layers.py 257.5 KB
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# Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserved
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#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
#     http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
import functools
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import collections
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import inspect
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import paddle.trainer.config_parser as cp
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from paddle.trainer.config_parser import *
from .activations import LinearActivation, SigmoidActivation, TanhActivation, \
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    ReluActivation, IdentityActivation, SoftmaxActivation, BaseActivation
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from .evaluators import *
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from .poolings import MaxPooling, AvgPooling, MaxWithMaskPooling, BasePoolingType, \
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    CudnnAvgPooling, CudnnAvgInclPadPooling, CudnnMaxPooling
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from .attrs import *
from .default_decorators import *
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try:
    import cPickle as pickle
except ImportError:
    import pickle
import copy

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__all__ = [
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    'full_matrix_projection',
    'AggregateLevel',
    'ExpandLevel',
    'identity_projection',
    'dotmul_projection',
    'dotmul_operator',
    'repeat_layer',
    'seq_reshape_layer',
    'table_projection',
    'mixed_layer',
    'data_layer',
    'embedding_layer',
    'fc_layer',
    'grumemory',
    'pooling_layer',
    'lstmemory',
    'last_seq',
    'first_seq',
    'cos_sim',
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    'l2_distance_layer',
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    'hsigmoid',
    'conv_projection',
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    'square_error_cost',
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    'regression_cost',
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    'classification_cost',
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    'LayerOutput',
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    'img_conv_layer',
    'img_pool_layer',
    'batch_norm_layer',
    'img_cmrnorm_layer',
    'addto_layer',
    'concat_layer',
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    'seq_concat_layer',
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    'lstm_step_layer',
    'recurrent_group',
    'memory',
    'StaticInput',
    'expand_layer',
    'scaling_layer',
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    'scaling_projection',
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    'power_layer',
    'interpolation_layer',
    'bilinear_interp_layer',
    'trans_layer',
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    'rotate_layer',
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    'sum_to_one_norm_layer',
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    'row_l2_norm_layer',
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    'get_output_layer',
    'LayerType',
    'context_projection',
    'beam_search',
    'maxid_layer',
    'GeneratedInput',
    'SubsequenceInput',
    'gru_step_layer',
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    'gru_step_naive_layer',
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    'recurrent_layer',
    'BaseGeneratedInput',
    'conv_operator',
    'conv_shift_layer',
    'tensor_layer',
    'selective_fc_layer',
    'sampling_id_layer',
    'slope_intercept_layer',
    'trans_full_matrix_projection',
    'linear_comb_layer',
    'convex_comb_layer',
    'ctc_layer',
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    'warp_ctc_layer',
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    'crf_layer',
    'crf_decoding_layer',
    'nce_layer',
    'cross_entropy_with_selfnorm',
    'cross_entropy',
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    'BeamInput',
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    'cross_entropy_over_beam',
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    'multi_binary_label_cross_entropy',
    'sum_cost',
    'rank_cost',
    'lambda_cost',
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    'huber_regression_cost',
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    'huber_classification_cost',
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    'block_expand_layer',
    'maxout_layer',
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    'dot_prod_layer',
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    'out_prod_layer',
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    'printer_layer',
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    'print_layer',
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    'priorbox_layer',
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    'cross_channel_norm_layer',
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    'multibox_loss_layer',
    'detection_output_layer',
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    'roi_pool_layer',
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    'spp_layer',
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    'pad_layer',
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    'eos_layer',
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    'smooth_l1_cost',
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    'layer_support',
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    'multiplex_layer',
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    'row_conv_layer',
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    'dropout_layer',
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    'prelu_layer',
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    'switch_order_layer',
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    'gated_unit_layer',
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    'crop_layer',
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    'sub_nested_seq_layer',
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    'clip_layer',
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    'slice_projection',
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    'seq_slice_layer',
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    'kmax_seq_score_layer',
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    'img_pool3d_layer',
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    'scale_shift_layer',
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    'img_conv3d_layer',
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    'resize_layer',
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    'sub_seq_layer',
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    'scale_sub_region_layer',
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    'factorization_machine',
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]
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class LayerType(object):
    """
    Layer type enumerations.
    """

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    DATA = 'data'
    MIXED_LAYER = 'mixed'
    LSTMEMORY = 'lstmemory'
    GRUMEMORY = 'gated_recurrent'
    SEQUENCE_LAST_INSTANCE = 'seqlastins'
    SEQUENCE_FIRST_INSTANCE = 'seqfirstins'
    SEQUENCE_RESHAPE = 'seqreshape'
    POOLING_MAX = 'max'
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    POOLING_AVG = 'average'
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    FC_LAYER = 'fc'
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    COST = 'cost'
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    COSINE_SIM_VEC = 'cos_vm'
    COSINE_SIM = 'cos'
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    L2_DISTANCE = 'l2_distance'
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    HSIGMOID = 'hsigmoid'
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    CONV_LAYER = 'conv'
    CONVTRANS_LAYER = 'convt'
    EXCONV_LAYER = 'exconv'
    EXCONVTRANS_LAYER = 'exconvt'
    CUDNNCONV_LAYER = 'cudnn_conv'
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    CUDNNCONVTRANS_LAYER = 'cudnn_convt'
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    POOL_LAYER = 'pool'
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    POOL3D_LAYER = 'pool3d'
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    BATCH_NORM_LAYER = 'batch_norm'
    NORM_LAYER = 'norm'
    SUM_TO_ONE_NORM_LAYER = 'sum_to_one_norm'
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    ROW_L2_NORM_LAYER = 'row_l2_norm'
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    ADDTO_LAYER = 'addto'

    CONCAT_LAYER = 'concat'
    CONCAT_PROJ_LAYER = 'concat2'
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    SEQUENCE_CONCAT_LAYER = 'seqconcat'
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    LSTM_STEP_LAYER = 'lstm_step'
    GRU_STEP_LAYER = 'gru_step'
    GET_OUTPUT_LAYER = 'get_output'

    EXPAND_LAYER = 'expand'
    INTERPOLATION_LAYER = 'interpolation'
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    BILINEAR_INTERP_LAYER = 'bilinear_interp'
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    POWER_LAYER = 'power'
    SCALING_LAYER = 'scaling'
    TRANS_LAYER = 'trans'
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    ROTATE_LAYER = 'rotate'
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    DOT_PROD_LAYER = 'dot_prod'
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    OUT_PROD_LAYER = 'out_prod'
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    FEATURE_MAP_EXPAND_LAYER = 'featmap_expand'
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    MEMORY = 'memory'
    MAXID_LAYER = 'maxid'
    EOSID_LAYER = 'eos_id'
    RECURRENT_LAYER = 'recurrent'

    CONV_SHIFT_LAYER = "conv_shift"
    TENSOR_LAYER = "tensor"
    SEL_FC_LAYER = "selective_fc"
    SAMPLING_ID_LAYER = "sampling_id"
    SLOPE_INTERCEPT_LAYER = "slope_intercept"
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    LINEAR_COMBINATION_LAYER = "convex_comb"
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    BLOCK_EXPAND = "blockexpand"
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    MAXOUT = "maxout"
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    SPP_LAYER = "spp"
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    PAD_LAYER = "pad"
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    MULTIPLEX_LAYER = "multiplex"
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    ROW_CONV_LAYER = "row_conv"
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    PRINT_LAYER = 'print'
    PRIORBOX_LAYER = 'priorbox'
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    MULTIBOX_LOSS_LAYER = 'multibox_loss'
    DETECTION_OUTPUT_LAYER = 'detection_output'
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    ROI_POOL_LAYER = 'roi_pool'
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    CTC_LAYER = 'ctc'
    WARP_CTC_LAYER = 'warp_ctc'
    CRF_LAYER = 'crf'
    CRF_DECODING_LAYER = 'crf_decoding'
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    NCE_LAYER = 'nce'
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    CONV3D_LAYER = 'conv3d'
    DECONV3D_LAYER = 'deconv3d'

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    RANK_COST = 'rank-cost'
    LAMBDA_COST = 'lambda_cost'
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    HUBER_REGRESSION = 'huber_regression'
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    HUBER_CLASSIFICATION = 'huber_classification'
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    CROSS_ENTROPY = 'multi-class-cross-entropy'
    CROSS_ENTROPY_WITH_SELFNORM = 'multi_class_cross_entropy_with_selfnorm'
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    CROSS_ENTROPY_OVER_BEAM = 'cross_entropy_over_beam'
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    SOFT_BIN_CLASS_CROSS_ENTROPY = 'soft_binary_class_cross_entropy'
    MULTI_BIN_LABEL_CROSS_ENTROPY = 'multi_binary_label_cross_entropy'
    SUM_COST = 'sum_cost'
    SMOOTH_L1 = 'smooth_l1'

    PRELU = 'prelu'
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    SWITCH_ORDER_LAYER = 'switch_order'
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    CROP_LAYER = 'crop'
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    SUB_NESTED_SEQ = 'sub_nested_seq'
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    CLIP_LAYER = 'clip'
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    SEQ_SLICE = 'seq_slice'
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    KMAX_SEQ_SCORE = 'kmax_seq_score'
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    SCALE_SHIFT_LAYER = 'scale_shift'
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    RESIZE = 'resize'
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    SUB_SEQ_LAYER = 'subseq'
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    SCALE_SUB_REGION_LAYER = 'scale_sub_region'
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    FACTORIZATION_MACHINE = 'factorization_machine'

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    @staticmethod
    def is_layer_type(type_name):
        """
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        Whether type_name is a layer type.
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        :param type_name: layer type name. Because layer type enumerations are
                          strings.
        :type type_name: basestring
        :return: True if is a layer_type
        :rtype: bool
        """
        for key in dir(LayerType):
            if key.isupper():
                att = getattr(LayerType, key)
                if isinstance(att, basestring) and type_name == att:
                    return True
        return False


class AggregateLevel(object):
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    """
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    PaddlePaddle supports three sequence types:
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    - :code:`SequenceType.NO_SEQUENCE` means the sample is not a sequence.
    - :code:`SequenceType.SEQUENCE` means the sample is a sequence.
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    - :code:`SequenceType.SUB_SEQUENCE` means the sample is a nested sequence,
      each timestep of which is also a sequence.
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    Accordingly, AggregateLevel supports two modes:
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    - :code:`AggregateLevel.TO_NO_SEQUENCE` means the aggregation acts on each
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      timestep of a sequence, both :code:`SUB_SEQUENCE` and :code:`SEQUENCE` will
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      be aggregated to :code:`NO_SEQUENCE`.

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    - :code:`AggregateLevel.TO_SEQUENCE` means the aggregation acts on each
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      sequence of a nested sequence, :code:`SUB_SEQUENCE` will be aggregated to
      :code:`SEQUENCE`.
    """
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    TO_NO_SEQUENCE = 'non-seq'
    TO_SEQUENCE = 'seq'
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    # compatible with previous configuration
    EACH_TIMESTEP = TO_NO_SEQUENCE
    EACH_SEQUENCE = TO_SEQUENCE
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class LayerOutput(object):
    """
    LayerOutput is output for layer function. It is used internally by several
    reasons.

    - Check layer connection make sense.

        - FC(Softmax) => Cost(MSE Error) is not good for example.

    - Tracking layer connection.

    - Pass to layer methods as input.

    :param name: Layer output name.
    :type name: basestring
    :param layer_type: Current Layer Type. One of LayerType enumeration.
    :type layer_type: basestring
    :param activation: Layer Activation.
    :type activation: BaseActivation.
    :param parents: Layer's parents.
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    :type parents: list | tuple | collections.Sequence
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    """

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    def __init__(self,
                 name,
                 layer_type,
                 parents=None,
                 activation=None,
                 num_filters=None,
                 img_norm_type=None,
                 size=None,
                 outputs=None,
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                 reverse=None):
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        assert isinstance(name, basestring)
        assert isinstance(layer_type, basestring)
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        assert size is not None
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        assert LayerType.is_layer_type(layer_type)
        self.name = name
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        self.full_name = MakeLayerNameInSubmodel(name)
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        self.layer_type = layer_type
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        if parents is not None and type(parents) != list:
            parents = [parents]
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        self.parents = [] if parents is None else parents
        self.activation = activation
        self.num_filters = num_filters
        self.img_norm_type = img_norm_type
        self.size = size
        if outputs is None:
            outputs = ['default']
        self.outputs = outputs
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        self.reverse = reverse
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    @property
    def width(self):
        return cp.g_layer_map[self.full_name].width

    @property
    def height(self):
        return cp.g_layer_map[self.full_name].height

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    @property
    def depth(self):
        return cp.g_layer_map[self.full_name].depth

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    def set_input(self, input):
        """
        Set the input for a memory layer. Can only be used for memory layer
        """
        assert isinstance(input, LayerOutput)
        assert self.layer_type == LayerType.MEMORY
        SetMemoryInput(self.name, input.name)

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ERROR_CLIPPING = 'error_clipping_threshold'
DROPOUT = 'drop_rate'
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DEVICE = 'device'
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def layer_support(*attrs):
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    attrs_list = list(attrs)
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    attrs_list.append(DEVICE)
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    def decorator(method):
        @functools.wraps(method)
        def wrapper(*args, **kwargs):
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            for attr in attrs_list:
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                for each in args:
                    if isinstance(each, ExtraLayerAttribute):
                        setattr(each, '_'.join(['can', attr]), True)
                for key in kwargs:
                    val = kwargs[key]
                    if isinstance(val, ExtraLayerAttribute):
                        setattr(val, '_'.join(['can', attr]), True)
            for each in args:
                if isinstance(each, ExtraLayerAttribute):
                    each.check(method.__name__)
            for key in kwargs:
                val = kwargs[key]
                if isinstance(val, ExtraLayerAttribute):
                    val.check(method.__name__)
            return method(*args, **kwargs)

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        if hasattr(method, 'argspec'):
            wrapper.argspec = method.argspec
        else:
            wrapper.argspec = inspect.getargspec(method)

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        return wrapper

    return decorator


@wrap_param_attr_default()
def full_matrix_projection(input, size=0, param_attr=None):
    """
    Full Matrix Projection. It performs full matrix multiplication.

    ..  math::
        out.row[i] += in.row[i] * weight

    There are two styles of usage.

    1. When used in mixed_layer like this, you can only set the input:

    .. code-block:: python

       with mixed_layer(size=100) as m:
           m += full_matrix_projection(input=layer)

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    2. When used as an independent object like this, you must set the size:
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    .. code-block:: python

       proj = full_matrix_projection(input=layer,
                                     size=100,
                                     param_attr=ParamAttr(name='_proj'))

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param size: The dimension of this layer.
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    :type size: int
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :return: FullMatrixProjection Object.
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    :rtype: FullMatrixProjection
    """
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    proj = FullMatrixProjection(
        input_layer_name=input.name, size=size, **param_attr.attr)
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    proj.origin = input
    return proj


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@wrap_param_attr_default()
def trans_full_matrix_projection(input, size=0, param_attr=None):
    """
    Different from full_matrix_projection, this projection performs matrix
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    multiplication, using the transpose of weight.
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    ..  math::
        out.row[i] += in.row[i] * w^\mathrm{T}

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    :math:`w^\mathrm{T}` means the transpose of weight.
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    The simply usage is:

    .. code-block:: python

       proj = trans_full_matrix_projection(input=layer,
                                           size=100,
                                           param_attr=ParamAttr(
                                                name='_proj',
                                                initial_mean=0.0,
                                                initial_std=0.01))

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    :param input: The input of this layer.
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    :type input: LayerOutput
    :param size: The parameter size. Means the width of parameter.
    :type size: int
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :return: TransposedFullMatrixProjection Object.
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    :rtype: TransposedFullMatrixProjection
    """
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    proj = TransposedFullMatrixProjection(
        input_layer_name=input.name, size=size, **param_attr.attr)
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    proj.origin = input
    return proj


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@wrap_param_attr_default()
def table_projection(input, size=0, param_attr=None):
    """
    Table Projection. It selects rows from parameter where row\_id
    is in input\_ids.

    .. math::
       out.row[i] += table.row[ids[i]]

    where :math:`out` is output, :math:`table` is parameter, :math:`ids` is input\_ids,
    and :math:`i` is row\_id.

    There are two styles of usage.

    1. When used in mixed_layer like this, you can only set the input:

    .. code-block:: python

       with mixed_layer(size=100) as m:
           m += table_projection(input=layer)

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    2. When used as an independent object like this, you must set the size:
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    .. code-block:: python

       proj = table_projection(input=layer,
                               size=100,
                               param_attr=ParamAttr(name='_proj'))


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    :param input: The input of this layer, which must contains id fields.
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    :type input: LayerOutput
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    :param size: The dimension of the output.
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    :type size: int
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :return: TableProjection Object.
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    :rtype: TableProjection
    """
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    proj = TableProjection(
        input_layer_name=input.name, size=size, **param_attr.attr)
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    proj.origin = input
    return proj


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def identity_projection(input, offset=None, size=None):
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    """
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    1. If offset=None, it performs IdentityProjection as follows:
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    .. math::
       out.row[i] += in.row[i]

    The example usage is:

    .. code-block:: python

       proj = identity_projection(input=layer)


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    2. If offset!=None, It executes IdentityOffsetProjection and takes the
       elements of the input in the range [offset, offset+size) as output.
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    .. math::
       out.row[i] += in.row[i + \\textrm{offset}]

    The example usage is:

    .. code-block:: python

       proj = identity_projection(input=layer,
                                  offset=10)

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    Note that neither of the projections have trainable parameter.
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param offset: The offset from the start of the input. The input's
                   elements in the range [offset, offset+size) will be
                   taken as output. If this parameter is not set or set
                   to None, the output will be the same as the input.
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    :type offset: int
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    :param size: The dimension of this layer. It will be neglected
                 when offset is None or not set.
    :type size: int
    :return: IdentityProjection or IdentityOffsetProjection object
    :rtype: IdentityProjection | IdentityOffsetProjection
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    """
    if offset is None:
        proj = IdentityProjection(input_layer_name=input.name)
        proj.origin = input
    else:
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        if size is None:
            size = input.size - offset
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        proj = IdentityOffsetProjection(
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            input_layer_name=input.name, offset=offset, size=size)
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        proj.origin = input
    return proj


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def slice_projection(input, slices):
    """
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    slice_projection slices the input value into multiple parts,
    then selects and merges some of them into a new output.
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    .. math::
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       output = [input.slices()]
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    The example usage is:

    .. code-block:: python

       proj = slice_projection(input=layer, slices=[(0, 10), (20, 30)])

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    Note that slice_projection has no trainable parameter.
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param slices: A list of start and end offsets of each slice.
    :type slices: list of tuple
    :return: SliceProjection object.
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    :rtype: SliceProjection
    """
    assert len(slices) >= 1
    start = 0
    for i in xrange(len(slices)):
        assert len(slices[i]) == 2
        # The start position of the next slice needs to be greater than
        # or equal to the end position of the previous slice.
        assert slices[i][0] >= start
        assert slices[i][1] >= slices[i][0]
        start = slices[i][1]
    proj = SliceProjection(input_layer_name=input.name, slices=slices)
    proj.origin = input
    return proj


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@wrap_param_attr_default()
def scaling_projection(input, param_attr=None):
    """
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    scaling_projection multiplies the input with a scalar parameter.
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    .. math::
       out += w * in

    The example usage is:

    .. code-block:: python

       proj = scaling_projection(input=layer)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :return: ScalingProjection object.
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    :rtype: ScalingProjection
    """
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    proj = ScalingProjection(input_layer_name=input.name, **param_attr.attr)
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    proj.origin = input
    return proj


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@wrap_param_attr_default()
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def dotmul_projection(input, param_attr=None):
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    """
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    DotMulProjection takes a layer as input and performs
    element-wise multiplication with weight.
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    ..  math::
        out.row[i] += in.row[i] .* weight

    where :math:`.*` means element-wise multiplication.

    The example usage is:

    .. code-block:: python

       proj = dotmul_projection(input=layer)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :return: DotMulProjection object.
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    :rtype: DotMulProjection
    """
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    proj = DotMulProjection(
        input_layer_name=input.name, size=input.size, **param_attr.attr)
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    proj.origin = input
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    return proj
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def dotmul_operator(a=None, b=None, scale=1, **kwargs):
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    """
    DotMulOperator takes two inputs and performs element-wise multiplication:
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    .. math::
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       out.row[i] += scale * (a.row[i] .* b.row[i])
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    where :math:`.*` means element-wise multiplication, and
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    scale is a config scalar, its default value is 1.
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    The example usage is:
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    .. code-block:: python
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       op = dotmul_operator(a=layer1, b=layer2, scale=0.5)
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    :param a: The first input of this layer.
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    :type a: LayerOutput
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    :param b: The second input of this layer.
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    :type b: LayerOutput
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    :param scale: A scalar to scale the product. Its default value is 1.
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    :type scale: float
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    :return: DotMulOperator object.
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    :rtype: DotMulOperator
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    """
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    if 'x' in kwargs or 'y' in kwargs:
        logger.warning('x and y arguments for dotmul_operator is deprecated. '
                       'Please use a and b as parameter.')
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    a = kwargs.get('x', a)  # For Backward capacity.
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    b = kwargs.get('y', b)
    assert isinstance(a, LayerOutput)
    assert isinstance(b, LayerOutput)
    if a.size is not None and b.size is not None:
        assert a.size == b.size

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    op = DotMulOperator(input_layer_names=[a.name, b.name], scale=scale)
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    op.origin = [a, b]
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    return op
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@wrap_bias_attr_default(['padding_attr'])
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def context_projection(input,
                       context_len,
                       context_start=None,
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                       padding_attr=False):
    """
    Context Projection.

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    It just reorganizes input sequence, combines "context_len" elements of the
    sequence to one context from context_start. "context_start" will be set to
    -(context_len - 1) / 2 by default. When context position is out of sequence
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    length, padding will be filled as zero if padding_attr = False, otherwise
    it is trainable.

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    For example, origin sequence is [A B C D E F G], context len is 3, padding_attr
    is not set, then after context projection, sequence will
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    be [ 0AB ABC BCD CDE DEF EFG FG0 ].

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    :param input: The input of this layer, which should be a sequence.
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    :type input: LayerOutput
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    :param context_len: The length of the context.
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    :type context_len: int
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    :param context_start: The start position of the context. The default value is
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                          -(context_len - 1)/2
    :type context_start: int
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    :param padding_attr: Parameter attribute of the padding. If the parameter is
                         set to False, padding will be zero. In other cases, the
                         padding is trainable, and its parameter attribute is set
                         by this parameter.
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    :type padding_attr: bool | ParameterAttribute
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    :return: Projection object.
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    :rtype: Projection
    """
    context_start = -(
        context_len - 1) / 2 if context_start is None else context_start

    extra_dict = dict()
    trainable = isinstance(padding_attr, ParameterAttribute)
    if trainable:
        extra_dict = padding_attr.attr

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    proj = ContextProjection(
        input_layer_name=input.name,
        context_length=context_len,
        context_start=context_start,
        trainable_padding=trainable,
        **extra_dict)
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    proj.origin = input
    return proj


class MixedLayerType(LayerOutput):
    """
    The internal object for trainer_helpers.
    """

    class AddToSealedMixedLayerException(Exception):
        def __init__(self):
            Exception.__init__(self)

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    def __init__(self, name, size, act, bias_attr, layer_attr, parents=None):
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        """
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        :param name: The name of this layer.
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        :type name: basestring
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        :param size: The dimension of this layer.
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        :type size: int
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        :param act: Activation type.
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        :type act: BaseActivation
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        :param bias_attr: The bias attribute. If the parameter is set to False or an object
                          whose type is not ParameterAttribute, no bias is defined. If the
                          parameter is set to True, the bias is initialized to zero.
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        :type bias_attr: ParameterAttribute | None | bool | Any
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        :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                           details.
        :type layer_attr: ExtraLayerAttribute | None
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        """
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        LayerOutput.__init__(
            self,
            name,
            LayerType.MIXED_LAYER,
            parents,
            size=size,
            activation=act)
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        self.bias_attr = bias_attr
        self.layer_attr = layer_attr
        self.inputs = []
        self.finalized = False

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    def __iadd__(self, other):
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        """
        + += operator
        :param other: Other projection.
        :type other: Projection
        :return: self.
        :rtype: MixedLayerType
        """
        if not self.finalized:
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            assert isinstance(other, Projection) or isinstance(other, Operator)
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            self.inputs.append(other)
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            if isinstance(other, Projection):
                self.parents.append(other.origin)
            else:
                self.parents.extend(other.origin)
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            return self
        else:
            raise MixedLayerType.AddToSealedMixedLayerException()

    def __enter__(self):
        assert len(self.inputs) == 0
        return self

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    def __exit__(self, exc_type, exc_value, tb):
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        if exc_value is not None:
            raise exc_value
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        assert len(self.inputs) != 0
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        ml = MixedLayer(
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            name=self.name,
            size=self.size,
            active_type=self.activation.name,
            bias=ParamAttr.to_bias(self.bias_attr),
            inputs=self.inputs,
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            **ExtraLayerAttribute.to_kwargs(self.layer_attr))
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        # update the size which might be computed inside MixedLayer
        # according to the operator's output size
        self.size = ml.config.size
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        self.finalized = True
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@wrap_name_default("mixed")
@wrap_act_default(act=LinearActivation())
@wrap_bias_attr_default(has_bias=False)
@layer_support(ERROR_CLIPPING, DROPOUT)
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def mixed_layer(size=0,
                input=None,
                name=None,
                act=None,
                bias_attr=False,
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                layer_attr=None):
    """
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    Mixed Layer. A mixed layer will add all inputs together, then activate the sum.
    Each input is a projection or operator.
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    There are two styles of usages.

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    1. When the parameter input is not set, use mixed_layer like this:
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    .. code-block:: python

       with mixed_layer(size=256) as m:
           m += full_matrix_projection(input=layer1)
           m += identity_projection(input=layer2)

    2. You can also set all inputs when invoke mixed_layer as follows:

    .. code-block:: python

       m = mixed_layer(size=256,
                       input=[full_matrix_projection(input=layer1),
                              full_matrix_projection(input=layer2)])

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param size: The dimension of this layer.
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    :type size: int
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    :param input: The input of this layer. It is an optional parameter.
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    :param act: Activation Type. LinearActivation is the default activation.
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    :type act: BaseActivation
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: MixedLayerType object.
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    :rtype: MixedLayerType
    """

    if input is None:
        return MixedLayerType(name, size, act, bias_attr, layer_attr)
    else:
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        with mixed_layer(
                name=name,
                size=size,
                act=act,
                bias_attr=bias_attr,
                layer_attr=layer_attr) as m:
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            if isinstance(input, collections.Sequence):
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                for each in input:
                    m += each
            else:
                m += input
        return m


@layer_support()
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def data_layer(name, size, depth=None, height=None, width=None,
               layer_attr=None):
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    """
    Define DataLayer For NeuralNetwork.

    The example usage is:

    ..  code-block:: python

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        data = data_layer(name="input", size=1000)
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    :param name: The name of this layer.
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    :type name: basestring
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    :param size: The dimension of this data layer.
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    :type size: int
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    :param height: The height of the input image data.
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    :type height: int | None
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    :param width: The width of the input image data.
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    :type width: int | None
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    Layer(
        type=LayerType.DATA,
        name=name,
        size=size,
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        depth=depth,
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        height=height,
        width=width,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    if depth is None:
        depth = 1
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    num_filters = None
    if height is not None and width is not None:
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        num_filters = size / (width * height * depth)
        assert num_filters * width * height * depth == size, \
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                "size=%s width=%s height=%s depth=%s" % (size, width, height, depth)
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    return LayerOutput(name, LayerType.DATA, size=size, num_filters=num_filters)
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@wrap_name_default("embedding")
@wrap_param_attr_default()
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@layer_support(ERROR_CLIPPING, DROPOUT)
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def embedding_layer(input, size, name=None, param_attr=None, layer_attr=None):
    """
    Define a embedding Layer.

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer, whose type must be Index Data.
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    :type input: LayerOutput
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    :param size: The dimension of the embedding vector.
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    :type size: int
    :param param_attr: The embedding parameter attribute. See ParameterAttribute
                      for details.
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    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    with mixed_layer(
            name=name,
            size=size,
            act=LinearActivation(),
            bias_attr=False,
            layer_attr=layer_attr) as mix:
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        mix += table_projection(input=input, size=size, param_attr=param_attr)
    return mix


@wrap_name_default()
@wrap_param_attr_default()
@wrap_bias_attr_default()
@wrap_act_default()
@layer_support(ERROR_CLIPPING, DROPOUT)
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def fc_layer(input,
             size,
             act=None,
             name=None,
             param_attr=None,
             bias_attr=None,
             layer_attr=None):
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    """
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    The fully connected layer.
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    The example usage is:

    .. code-block:: python

       fc = fc_layer(input=layer,
                     size=1024,
                     act=LinearActivation(),
                     bias_attr=False)

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    which is equal to:
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    .. code-block:: python

       with mixed_layer(size=1024) as fc:
           fc += full_matrix_projection(input=layer)

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
    :type input: LayerOutput | list | tuple
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    :param size: The dimension of this layer.
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    :type size: int
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    :param act: Activation Type. TanhActivation is the default activation.
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    :type act: BaseActivation
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    if isinstance(input, LayerOutput):
        input = [input]
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        assert not isinstance(param_attr, collections.Sequence)
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        param_attr = [param_attr]
    else:
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        if isinstance(param_attr, collections.Sequence):
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            assert len(input) == len(param_attr)
        else:
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            if "parameter_name" in param_attr.attr and len(input) > 1:
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                logger.fatal(
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                    "When the name field of param_attr is manually specified "
                    "and the input is a list, the param_attr should also be a "
                    "list with each item being the param_attr for each input "
                    "item. If only one named param_attr is provided, all the "
                    "input items would share this parameter.")
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            param_attr = [copy.deepcopy(param_attr) for _ in range(len(input))]

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    assert isinstance(input, collections.Sequence)
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    Layer(
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        inputs=[
            Input(ipt.name, **attr.attr) for ipt, attr in zip(input, param_attr)
        ],
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        name=name,
        type=LayerType.FC_LAYER,
        size=size,
        bias=ParamAttr.to_bias(bias_attr),
        active_type=act.name,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.FC_LAYER, input, activation=act, size=size)
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@wrap_name_default("print")
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def printer_layer(input, format=None, name=None):
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    """
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    Print the output value of the layers specified by the parameter input.
    This layer is useful for debugging.
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
    :type input: LayerOutput | list | tuple
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
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    if isinstance(input, LayerOutput):
        input = [input]
    assert isinstance(input, collections.Sequence)  # list or tuple
    for each in input:
        assert isinstance(each, LayerOutput)
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    Layer(
        name=name,
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        format=format,
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        type=LayerType.PRINT_LAYER,
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        inputs=[l.name for l in input], )
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    # this layer don't return anything, can not be input of other layer.
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# Keep print_layer for compatibility with V1 API.
# 'print_layer' does not work for V2 API because it will be changed to
# 'print' for V2 API. But 'print' is a reserved key word in python.


print_layer = printer_layer

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@wrap_name_default("priorbox")
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def priorbox_layer(input,
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                   image,
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                   aspect_ratio,
                   variance,
                   min_size,
                   max_size=[],
                   name=None):
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    """
    Compute the priorbox and set the variance. This layer is necessary for ssd.

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param image: The network input image.
    :type image: LayerOutput
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    :param aspect_ratio: The aspect ratio.
    :type aspect_ratio: list
    :param variance: The bounding box variance.
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    :type min_size: The minimum size of the priorbox width/height.
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    :param min_size: list
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    :type max_size: The maximum size of the priorbox width/height. It could be NULL.
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    :param max_size: list
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
    # plus one for ratio 1.
    num_filters = (len(aspect_ratio) * 2 + 1 + len(max_size)) * 4
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    size = (input.size / input.num_filters) * num_filters * 2
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    Layer(
        name=name,
        type=LayerType.PRIORBOX_LAYER,
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        inputs=[input.name, image.name],
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        size=size,
        min_size=min_size,
        max_size=max_size,
        aspect_ratio=aspect_ratio,
        variance=variance)
    return LayerOutput(
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        name,
        LayerType.PRIORBOX_LAYER,
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        parents=[input, image],
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        num_filters=num_filters,
        size=size)

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@wrap_name_default("multibox_loss")
def multibox_loss_layer(input_loc,
                        input_conf,
                        priorbox,
                        label,
                        num_classes,
                        overlap_threshold=0.5,
                        neg_pos_ratio=3.0,
                        neg_overlap=0.5,
                        background_id=0,
                        name=None):
    """
    Compute the location loss and the confidence loss for ssd.

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input_loc: The input predicted locations.
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    :type input_loc: LayerOutput | List of LayerOutput
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    :param input_conf: The input priorbox confidence.
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    :type input_conf: LayerOutput | List of LayerOutput
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    :param priorbox: The input priorbox location and the variance.
    :type priorbox: LayerOutput
    :param label: The input label.
    :type label: LayerOutput
    :param num_classes: The number of the classification.
    :type num_classes: int
    :param overlap_threshold: The threshold of the overlap.
    :type overlap_threshold: float
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    :param neg_pos_ratio: The ratio of the negative bounding box to
                          the positive bounding box.
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    :type neg_pos_ratio: float
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    :param neg_overlap: The negative bounding box overlap threshold.
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    :type neg_overlap: float
    :param background_id: The background class index.
    :type background_id: int
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
    if isinstance(input_loc, LayerOutput):
        input_loc = [input_loc]
    assert isinstance(input_loc, collections.Sequence)  # list or tuple
    for each in input_loc:
        assert isinstance(each, LayerOutput)
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    input_loc_num = len(input_loc)
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    if isinstance(input_conf, LayerOutput):
        input_conf = [input_conf]
    assert isinstance(input_conf, collections.Sequence)  # list or tuple
    for each in input_conf:
        assert isinstance(each, LayerOutput)
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    input_conf_num = len(input_conf)
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    # Check the input layer number.
    assert input_loc_num == input_conf_num

    inputs = [priorbox.name, label.name]
    inputs.extend([l.name for l in input_loc])
    inputs.extend([l.name for l in input_conf])
    parents = [priorbox, label]
    parents.extend(input_loc)
    parents.extend(input_conf)

    Layer(
        name=name,
        type=LayerType.MULTIBOX_LOSS_LAYER,
        inputs=inputs,
        input_num=input_loc_num,
        num_classes=num_classes,
        overlap_threshold=overlap_threshold,
        neg_pos_ratio=neg_pos_ratio,
        neg_overlap=neg_overlap,
        background_id=background_id)
    return LayerOutput(
        name, LayerType.MULTIBOX_LOSS_LAYER, parents=parents, size=1)


@wrap_name_default("detection_output")
def detection_output_layer(input_loc,
                           input_conf,
                           priorbox,
                           num_classes,
                           nms_threshold=0.45,
                           nms_top_k=400,
                           keep_top_k=200,
                           confidence_threshold=0.01,
                           background_id=0,
                           name=None):
    """
    Apply the NMS to the output of network and compute the predict bounding
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    box location. The output's shape of this layer could be zero if there is
    no valid bounding box.
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input_loc: The input predict locations.
    :type input_loc: LayerOutput | List of LayerOutput.
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    :param input_conf: The input priorbox confidence.
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    :type input_conf: LayerOutput | List of LayerOutput.
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    :param priorbox: The input priorbox location and the variance.
    :type priorbox: LayerOutput
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    :param num_classes: The number of the classes.
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    :type num_classes: int
    :param nms_threshold: The Non-maximum suppression threshold.
    :type nms_threshold: float
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    :param nms_top_k: The bounding boxes number kept of the NMS's output.
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    :type nms_top_k: int
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    :param keep_top_k: The bounding boxes number kept of the layer's output.
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    :type keep_top_k: int
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    :param confidence_threshold: The classification confidence threshold.
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    :type confidence_threshold: float
    :param background_id: The background class index.
    :type background_id: int
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
    if isinstance(input_loc, LayerOutput):
        input_loc = [input_loc]
    assert isinstance(input_loc, collections.Sequence)  # list or tuple
    for each in input_loc:
        assert isinstance(each, LayerOutput)
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    input_loc_num = len(input_loc)
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    if isinstance(input_conf, LayerOutput):
        input_conf = [input_conf]
    assert isinstance(input_conf, collections.Sequence)  # list or tuple
    for each in input_conf:
        assert isinstance(each, LayerOutput)
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    input_conf_num = len(input_conf)

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    # Check the input layer number.
    assert input_loc_num == input_conf_num

    inputs = [priorbox.name]
    inputs.extend([l.name for l in input_loc])
    inputs.extend([l.name for l in input_conf])
    parents = [priorbox]
    parents.extend(input_loc)
    parents.extend(input_conf)

    size = keep_top_k * 7

    Layer(
        name=name,
        type=LayerType.DETECTION_OUTPUT_LAYER,
        inputs=inputs,
        size=size,
        input_num=input_loc_num,
        num_classes=num_classes,
        nms_threshold=nms_threshold,
        nms_top_k=nms_top_k,
        keep_top_k=keep_top_k,
        confidence_threshold=confidence_threshold,
        background_id=background_id)
    return LayerOutput(
        name, LayerType.DETECTION_OUTPUT_LAYER, parents=parents, size=size)


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@wrap_name_default("roi_pool")
def roi_pool_layer(input,
                   rois,
                   pooled_width,
                   pooled_height,
                   spatial_scale,
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                   num_channels=None,
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                   name=None):
    """
    A layer used by Fast R-CNN to extract feature maps of ROIs from the last
    feature map.

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :param input: The input layer.
    :type input: LayerOutput.
    :param rois: The input ROIs' data.
    :type rois: LayerOutput.
    :param pooled_width: The width after pooling.
    :type pooled_width: int
    :param pooled_height: The height after pooling.
    :type pooled_height: int
    :param spatial_scale: The spatial scale between the image and feature map.
    :type spatial_scale: float
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    :param num_channels: The number of the input channels.
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    :type num_channels: int
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
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    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters
    size = num_channels * pooled_width * pooled_height
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    Layer(
        name=name,
        type=LayerType.ROI_POOL_LAYER,
        inputs=[input.name, rois.name],
        pooled_width=pooled_width,
        pooled_height=pooled_height,
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        spatial_scale=spatial_scale,
        num_channels=num_channels)
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    return LayerOutput(
        name, LayerType.ROI_POOL_LAYER, parents=[input, rois], size=size)
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@wrap_name_default("cross_channel_norm")
def cross_channel_norm_layer(input, name=None, param_attr=None):
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    """
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    Normalize a layer's output. This layer is necessary for ssd. This
    layer applys normalization across the channels of each sample to
    a convolutional layer's output and scales the output by a group of
    trainable factors whose dimensions equal to the channel's number.
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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    :type param_attr: ParameterAttribute
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
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    assert input.num_filters is not None
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    Layer(
        name=name,
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        type=LayerType.NORM_LAYER,
        inputs=[
            Input(
                input.name,
                norm=Norm(
                    norm_type="cross-channel-norm",
                    channels=input.num_filters,
                    size=input.size,
                    scale=0,
                    pow=0,
                    blocked=0),
                **param_attr.attr)
        ])
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    return LayerOutput(
        name,
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        LayerType.NORM_LAYER,
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        parents=input,
        num_filters=input.num_filters,
        size=input.size)


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@wrap_name_default("seq_pooling")
@wrap_bias_attr_default(has_bias=False)
@wrap_param_default(['pooling_type'], default_factory=lambda _: MaxPooling())
@layer_support()
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def pooling_layer(input,
                  pooling_type=None,
                  name=None,
                  bias_attr=None,
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                  agg_level=AggregateLevel.TO_NO_SEQUENCE,
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                  stride=-1,
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                  layer_attr=None):
    """
    Pooling layer for sequence inputs, not used for Image.

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    If stride > 0, this layer slides a window whose size is determined by stride,
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    and returns the pooling value of the sequence in the window as the output. Thus,
    a long sequence will be shortened. Note that for sequence with sub-sequence, the
    default value of stride is -1.
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    The example usage is:

    .. code-block:: python

       seq_pool = pooling_layer(input=layer,
                                pooling_type=AvgPooling(),
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                                agg_level=AggregateLevel.TO_NO_SEQUENCE)
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    :param agg_level: AggregateLevel.TO_NO_SEQUENCE or
                      AggregateLevel.TO_SEQUENCE
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    :type agg_level: AggregateLevel
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param pooling_type: Type of pooling. MaxPooling is the default pooling.
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    :type pooling_type: BasePoolingType | None
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    :param stride: The step size between successive pooling regions.
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    :type stride: int
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
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    """
    extra_dict = dict()
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    # noinspection PyUnresolvedReferences
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    if isinstance(pooling_type, AvgPooling):
        extra_dict['average_strategy'] = pooling_type.strategy
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    elif isinstance(pooling_type, MaxPooling) and \
                    pooling_type.output_max_index is not None:
        assert isinstance(pooling_type.output_max_index, bool)
        extra_dict['output_max_index'] = pooling_type.output_max_index
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    extra_dict.update(ExtraLayerAttribute.to_kwargs(layer_attr))

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    if agg_level == AggregateLevel.TO_SEQUENCE:
        assert stride == -1

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    Layer(
        name=name,
        type=pooling_type.name,
        inputs=[Input(input.name)],
        bias=ParamAttr.to_bias(bias_attr),
        trans_type=agg_level,
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        stride=stride,
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        **extra_dict)
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    return LayerOutput(
        name, pooling_type.name, parents=[input], size=input.size)
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@wrap_bias_attr_default()
@wrap_param_attr_default()
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@wrap_act_default(param_names=['gate_act'], act=SigmoidActivation())
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@wrap_act_default(param_names=["act", 'state_act'], act=TanhActivation())
@wrap_name_default("lstmemory")
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@layer_support()
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def lstmemory(input,
              name=None,
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              size=None,
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              reverse=False,
              act=None,
              gate_act=None,
              state_act=None,
              bias_attr=None,
              param_attr=None,
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              layer_attr=None):
    """
    Long Short-term Memory Cell.

    The memory cell was implemented as follow equations.

    ..  math::

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        i_t & = \\sigma(W_{xi}x_{t} + W_{hi}h_{t-1} + W_{ci}c_{t-1} + b_i)
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        f_t & = \\sigma(W_{xf}x_{t} + W_{hf}h_{t-1} + W_{cf}c_{t-1} + b_f)
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        c_t & = f_tc_{t-1} + i_t tanh (W_{xc}x_t+W_{hc}h_{t-1} + b_c)
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        o_t & = \\sigma(W_{xo}x_{t} + W_{ho}h_{t-1} + W_{co}c_t + b_o)
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        h_t & = o_t tanh(c_t)
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    NOTE: In PaddlePaddle's implementation, the multiplications
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    :math:`W_{xi}x_{t}` , :math:`W_{xf}x_{t}`,
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    :math:`W_{xc}x_t`, :math:`W_{xo}x_{t}` are not done in the lstmemory layer,
    so an additional mixed_layer with full_matrix_projection or a fc_layer must
    be included in the configuration file to complete the input-to-hidden
    mappings before lstmemory is called.
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    NOTE: This is a low level user interface. You can use network.simple_lstm
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    to config a simple plain lstm layer.

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    Reference:
        `Generating Sequences With Recurrent Neural Networks
        <https://arxiv.org/pdf/1308.0850.pdf>`_
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param size: DEPRECATED. The dimension of the lstm cell.
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    :type size: int
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param reverse: Whether the input sequence is processed in a reverse order.
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    :type reverse: bool
1545
    :param act: Activation type. TanhActivation is the default activation.
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    :type act: BaseActivation
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    :param gate_act: Activation type of this layer's gates. SigmoidActivation is the
                     default activation.
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    :type gate_act: BaseActivation
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    :param state_act: Activation type of the state. TanhActivation is the default activation.
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    :type state_act: BaseActivation
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """

    assert gate_act.support_hppl
    assert state_act.support_hppl
    assert act.support_hppl
1568
    assert input.size is not None and input.size % 4 == 0
1569

1570 1571 1572 1573 1574
    if size is not None:
        if input.size / 4 == size:
            plog = logger.warning
        else:
            plog = logger.fatal
1575 1576 1577
        plog("size of lstmemory layer: %s is automatically set to "
             "size of input layer / 4. The parameter size passing to "
             "this layer is ignored." % (name))
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    Layer(
        name=name,
        type=LayerType.LSTMEMORY,
        active_type=act.name,
        active_state_type=state_act.name,
        active_gate_type=gate_act.name,
        reversed=reverse,
        bias=ParamAttr.to_bias(bias_attr),
        inputs=[Input(input.name, **param_attr.attr)],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(
        name,
        LayerType.LSTMEMORY, [input],
        size=input.size / 4,
        reverse=reverse)
1595

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@wrap_bias_attr_default()
@wrap_param_attr_default()
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@wrap_act_default(param_names=['gate_act'], act=SigmoidActivation())
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@wrap_act_default(param_names=["act"], act=TanhActivation())
@wrap_name_default("gru")
1602
@layer_support()
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def grumemory(input,
1604
              size=None,
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              name=None,
              reverse=False,
              act=None,
              gate_act=None,
              bias_attr=None,
              param_attr=None,
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              layer_attr=None):
    """
    Gate Recurrent Unit Layer.

    The memory cell was implemented as follow equations.

    1. update gate :math:`z`: defines how much of the previous memory to
    keep around or the unit updates its activations. The update gate
    is computed by:

    ..  math::

        z_t = \\sigma(W_{z}x_{t} + U_{z}h_{t-1} + b_z)

    2. reset gate :math:`r`: determines how to combine the new input with the
    previous memory. The reset gate is computed similarly to the update gate:

    ..  math::

        r_t = \\sigma(W_{r}x_{t} + U_{r}h_{t-1} + b_r)

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    3. The candidate activation :math:`\\tilde{h_t}` is computed similarly to
    that of the traditional recurrent unit:
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    ..  math::

        {\\tilde{h_t}} = tanh(W x_{t} + U (r_{t} \odot h_{t-1}) + b)

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    4. The hidden activation :math:`h_t` of the GRU at time t is a linear
    interpolation between the previous activation :math:`h_{t-1}` and the
    candidate activation :math:`\\tilde{h_t}`:
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    ..  math::

        h_t = (1 - z_t) h_{t-1} + z_t {\\tilde{h_t}}

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    NOTE: In PaddlePaddle's implementation, the multiplication operations
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    :math:`W_{r}x_{t}`, :math:`W_{z}x_{t}` and :math:`W x_t` are not performed
    in gate_recurrent layer. Consequently, an additional mixed_layer with
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    full_matrix_projection or a fc_layer must be included before grumemory
    is called.
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    Reference:
        `Empirical Evaluation of Gated Recurrent Neural Networks on Sequence Modeling
        <https://arxiv.org/abs/1412.3555>`_
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    The simple usage is:

    .. code-block:: python

       gru = grumemory(input)

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    :param name: The name of this layer. It is optional.
    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput.
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    :param size: DEPRECATED. The dimension of the gru cell.
1668
    :type size: int
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    :param reverse: Whether the input sequence is processed in a reverse order.
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    :type reverse: bool
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    :param act: Activation type, TanhActivation is the default. This activation
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                affects the :math:`{\\tilde{h_t}}`.
    :type act: BaseActivation
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    :param gate_act: Activation type of this layer's two gates. SigmoidActivation is
                     the default activation. This activation affects the :math:`z_t`
                     and :math:`r_t`. It is the :math:`\\sigma` in the above formula.
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    :type gate_act: BaseActivation
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    assert act.support_hppl
    assert gate_act.support_hppl
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    assert input.size is not None and input.size % 3 == 0
    if size is not None:
        if input.size / 3 == size:
            plog = logger.warning
        else:
            plog = logger.fatal
1698 1699 1700
        plog("size of grumemory layer: %s is automatically set to "
             "size of input layer / 3. The parameter size passing to this "
             "layer is ignored." % (name))
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    Layer(
        name=name,
        type=LayerType.GRUMEMORY,
        active_type=act.name,
        active_gate_type=gate_act.name,
        reversed=reverse,
        bias=ParamAttr.to_bias(bias_attr),
        inputs=[Input(input.name, **param_attr.attr)],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(
        name,
        LayerType.GRUMEMORY, [input],
        size=input.size / 3,
        reverse=reverse)
1717

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@wrap_name_default()
@layer_support()
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def last_seq(input,
             name=None,
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             agg_level=AggregateLevel.TO_NO_SEQUENCE,
1724
             stride=-1,
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             layer_attr=None):
    """
    Get Last Timestamp Activation of a sequence.

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    If stride > 0, this layer will slide a window whose size is determined by stride,
    and return the last value of the sequence in the window as the output. Thus, a
    long sequence will be shortened. Note that for sequence with sub-sequence, the
    default value of stride is -1.
1733

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    The simple usage is:

    .. code-block:: python

       seq = last_seq(input=layer)

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    :param agg_level: Aggregated level
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    :type agg_level: AggregateLevel
1742
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param stride: The step size between successive pooling regions.
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    :type stride: int
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
1754 1755 1756 1757 1758 1759
    if input.reverse is not None and input.reverse:
        logger.warning("You are getting the last instance of a sequence that"
                       " is a output of a REVERSED layer. There is no time"
                       " series information at all. Maybe you want to use"
                       " first_seq instead.")

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    if agg_level == AggregateLevel.TO_SEQUENCE:
1761 1762
        assert stride == -1

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    Layer(
        name=name,
        type=LayerType.SEQUENCE_LAST_INSTANCE,
        inputs=[input.name],
        trans_type=agg_level,
1768
        stride=stride,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.SEQUENCE_LAST_INSTANCE,
        parents=[input],
        size=input.size)
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@wrap_name_default()
@layer_support()
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def first_seq(input,
              name=None,
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              agg_level=AggregateLevel.TO_NO_SEQUENCE,
1782
              stride=-1,
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              layer_attr=None):
    """
    Get First Timestamp Activation of a sequence.

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    If stride > 0, this layer will slide a window whose size is determined by stride,
    and return the first value of the sequence in the window as the output. Thus, a
    long sequence will be shortened. Note that for sequence with sub-sequence, the
    default value of stride is -1.
1791

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    The simple usage is:

    .. code-block:: python

       seq = first_seq(input=layer)

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    :param agg_level: aggregation level
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    :type agg_level: AggregateLevel
1800
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param stride: The step size between successive pooling regions.
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    :type stride: int
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
1812 1813 1814 1815 1816 1817 1818

    if input.reverse is not None and not input.reverse:
        logger.warning('You are getting the first instance for a time series,'
                       ' and it is a normal recurrent layer output. There is no'
                       ' time series information at all. Maybe you want to use'
                       ' last_seq instead.')

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    if agg_level == AggregateLevel.TO_SEQUENCE:
1820 1821
        assert stride == -1

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    Layer(
        name=name,
        type=LayerType.SEQUENCE_FIRST_INSTANCE,
        inputs=[input.name],
        trans_type=agg_level,
1827
        stride=stride,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.SEQUENCE_FIRST_INSTANCE,
        parents=[input],
        size=input.size)
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class ExpandLevel(object):
1837 1838 1839 1840 1841
    """
    Please refer to AggregateLevel first.

    ExpandLevel supports two modes:

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    - :code:`ExpandLevel.FROM_NO_SEQUENCE` means the expansion acts on
      :code:`NO_SEQUENCE`, which will be expanded to
1844 1845
      :code:`SEQUENCE` or :code:`SUB_SEQUENCE`.

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    - :code:`ExpandLevel.FROM_SEQUENCE` means the expansion acts on
      :code:`SEQUENCE`, which will be expanded to
1848 1849
      :code:`SUB_SEQUENCE`.
    """
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    FROM_NO_SEQUENCE = AggregateLevel.TO_NO_SEQUENCE
    FROM_SEQUENCE = AggregateLevel.TO_SEQUENCE
1852 1853
    # compatible with previous configuration
    FROM_TIMESTEP = FROM_NO_SEQUENCE
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1855

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@wrap_name_default()
@layer_support()
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def expand_layer(input,
                 expand_as,
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                 name=None,
                 bias_attr=False,
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                 expand_level=ExpandLevel.FROM_NO_SEQUENCE,
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                 layer_attr=None):
    """
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    A layer for expanding dense data or (sequence data where the length of each
    sequence is one) to sequence data.
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    The example usage is:

    .. code-block:: python

       expand = expand_layer(input=layer1,
                             expand_as=layer2,
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                             expand_level=ExpandLevel.FROM_NO_SEQUENCE)
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param expand_as: Expand the input according to this layer's sequence infomation. And
                      after the operation, the input expanded will have the same number of
                      elememts as this layer.
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    :type expand_as: LayerOutput
1882
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param expand_level: Whether the input layer is a sequence or the element of a sequence.
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    :type expand_level: ExpandLevel
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """

    Layer(
        inputs=[input.name, expand_as.name],
        name=name,
        bias=ParamAttr.to_bias(bias_attr=bias_attr),
        type=LayerType.EXPAND_LAYER,
        trans_type=expand_level,
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        size=input.size,
        layer_type=LayerType.EXPAND_LAYER,
        parents=[input, expand_as])
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@wrap_name_default()
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@wrap_act_default(act=IdentityActivation())
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@layer_support()
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def repeat_layer(input,
                 num_repeats,
                 as_row_vector=True,
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                 act=None,
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                 name=None,
                 layer_attr=None):
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    """
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    A layer for repeating the input for num_repeats times.
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    If as_row_vector:
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    .. math::
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       y  = [x_1,\cdots, x_n, \cdots, x_1, \cdots, x_n]
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    If not as_row_vector:
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    .. math::
       y  = [x_1,\cdots, x_1, \cdots, x_n, \cdots, x_n]

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    The example usage is:

    .. code-block:: python

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       expand = repeat_layer(input=layer, num_repeats=4)
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param num_repeats: The times of repeating the input.
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    :type num_repeats: int
1944
    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :param as_row_vector: Whether to treat the input as row vectors or not. If
                          the parameter is set to True, the repeating operation
                          will be performed in the column direction. Otherwise,
                          it will be performed in the row direction.
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    :type as_row_vector: bool
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    :param act: Activation type. IdentityActivation is the default activation.
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    :type act: BaseActivation
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    l = Layer(
        inputs=[input.name],
        name=name,
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        active_type=act.name,
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        num_filters=num_repeats,
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        as_row_vector=as_row_vector,
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        type=LayerType.FEATURE_MAP_EXPAND_LAYER,
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        size=l.config.size,
        layer_type=LayerType.FEATURE_MAP_EXPAND_LAYER,
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        activation=act,
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        parents=[input])

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@wrap_name_default("seqreshape")
@wrap_act_default(act=IdentityActivation())
@wrap_bias_attr_default(has_bias=False)
1979
@layer_support(ERROR_CLIPPING, DROPOUT)
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def seq_reshape_layer(input,
                      reshape_size,
                      act=None,
                      name=None,
                      layer_attr=None,
                      bias_attr=None):
    """
    A layer for reshaping the sequence. Assume the input sequence has T instances,
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    the dimension of each instance is M, and the input reshape_size is N, then the
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    output sequence has T*M/N instances, the dimension of each instance is N.

    Note that T*M/N must be an integer.

    The example usage is:

    .. code-block:: python

       reshape = seq_reshape_layer(input=layer, reshape_size=4)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param reshape_size: The dimension of the reshaped sequence.
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    :type reshape_size: int
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param act: Activation type. IdentityActivation is the default activation.
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    :type act: BaseActivation
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    Layer(
        inputs=[input.name],
        name=name,
        size=reshape_size,
        type=LayerType.SEQUENCE_RESHAPE,
        bias=ParamAttr.to_bias(bias_attr),
        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        size=reshape_size,
        layer_type=LayerType.SEQUENCE_RESHAPE,
        parents=[input])


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@wrap_name_default()
@layer_support()
def interpolation_layer(input, weight, name=None, layer_attr=None):
    """
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    This layer performs linear interpolation on two inputs,
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    which is used in NEURAL TURING MACHINE.

    .. math::
       y.row[i] = w[i] * x_1.row[i] + (1 - w[i]) * x_2.row[i]

    where :math:`x_1` and :math:`x_2` are two (batchSize x dataDim) inputs,
    :math:`w` is (batchSize x 1) weight vector, and :math:`y` is
    (batchSize x dataDim) output.

    The example usage is:

    .. code-block:: python

       interpolation = interpolation_layer(input=[layer1, layer2], weight=layer3)

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    :param input: The input of this layer.
    :type input: list | tuple
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    :param weight: Weight layer.
    :type weight: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    assert isinstance(input, collections.Sequence)
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    assert len(input) == 2
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    assert isinstance(input[0], LayerOutput) and isinstance(input[1],
                                                            LayerOutput)
    if input[0].size is not None and input[1].size is not None:
        assert input[0].size == input[1].size
    assert isinstance(weight, LayerOutput)
    if weight.size is not None:
        assert weight.size == 1
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    Layer(
        name=name,
        type=LayerType.INTERPOLATION_LAYER,
        inputs=[weight.name, input[0].name, input[1].name],
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.INTERPOLATION_LAYER,
        parents=[weight, input[0], input[1]],
        size=input[0].size)
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@wrap_name_default()
@layer_support()
def bilinear_interp_layer(input,
                          out_size_x=None,
                          out_size_y=None,
                          name=None,
                          layer_attr=None):
    """
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    This layer implements bilinear interpolation on convolutional layer's output.
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    Please refer to Wikipedia: https://en.wikipedia.org/wiki/Bilinear_interpolation

    The simple usage is:

    .. code-block:: python

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       bilinear = bilinear_interp_layer(input=layer1, out_size_x=64, out_size_y=64)
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    :param input: The input of this layer.
    :type input: LayerOutput.
    :param out_size_x: The width of the output.
    :type out_size_x: int
    :param out_size_y: The height of the output.
    :type out_size_y: int
    :param name: The name of this layer. It is optional.
    :type name: basestring
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
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    """
    assert input.layer_type == LayerType.CONV_LAYER
    assert isinstance(input.activation, LinearActivation)
    assert out_size_x > 0 and out_size_y > 0
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    assert input.num_filters is not None
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    num_channels = input.num_filters
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    l = Layer(
        name=name,
        inputs=Input(
            input.name,
            bilinear_interp=BilinearInterp(
                out_size_x=out_size_x,
                out_size_y=out_size_y,
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                channels=num_channels)),
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        type=LayerType.BILINEAR_INTERP_LAYER,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.BILINEAR_INTERP_LAYER,
        parents=[input],
        num_filters=num_channels,
        size=l.config.size)

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@wrap_name_default()
@layer_support()
def power_layer(input, weight, name=None, layer_attr=None):
    """
    This layer applies a power function to a vector element-wise,
    which is used in NEURAL TURING MACHINE.

    .. math::
       y = x^w

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    where :math:`x` is an input vector, :math:`w` is a scalar exponent,
    and :math:`y` is an output vector.
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    The example usage is:

    .. code-block:: python

       power = power_layer(input=layer1, weight=layer2)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param weight: The exponent of the power.
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    :type weight: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    assert isinstance(input, LayerOutput) and isinstance(weight, LayerOutput)
    if weight.size is not None:
        assert weight.size == 1
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    Layer(
        name=name,
        type=LayerType.POWER_LAYER,
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        inputs=[weight.name, input.name],
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.POWER_LAYER, parents=[input, weight], size=input.size)
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@wrap_name_default()
@layer_support()
def scaling_layer(input, weight, name=None, layer_attr=None):
    """
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    A layer for multiplying input vector by weight scalar.
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    .. math::
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       y  = w x
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    where :math:`x` is size=dataDim input, :math:`w` is size=1 weight,
    and :math:`y` is size=dataDim output.

    Note that the above computation is for one sample. Multiple samples are
    processed in one batch.
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    The example usage is:

    .. code-block:: python

       scale = scaling_layer(input=layer1, weight=layer2)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param weight: The weight of each sample.
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    :type weight: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    assert isinstance(weight, LayerOutput) and isinstance(input, LayerOutput)
    if weight.size is not None:
        assert weight.size == 1
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    Layer(
        name=name,
        type=LayerType.SCALING_LAYER,
        inputs=[weight.name, input.name],
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.SCALING_LAYER, parents=[weight, input], size=input.size)
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@wrap_name_default()
@layer_support()
def trans_layer(input, name=None, layer_attr=None):
    """
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    A layer for transposing a minibatch matrix.
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    .. math::
       y = x^\mathrm{T}

    where :math:`x` is (M x N) input, and :math:`y` is (N x M) output.

    The example usage is:

    .. code-block:: python

       trans = trans_layer(input=layer)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    Layer(
        name=name,
        type=LayerType.TRANS_LAYER,
        inputs=[input.name],
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.TRANS_LAYER, parents=[input], size=input.size)
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@wrap_name_default()
@layer_support()
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def rotate_layer(input, height, width, name=None, layer_attr=None):
2267
    """
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    A layer for rotating 90 degrees (clock-wise) for each feature channel,
    usually used when the input sample is some image or feature map.
2270 2271

    .. math::
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       y(j,i,:) = x(M-i-1,j,:)
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    where :math:`x` is (M x N x C) input, and :math:`y` is (N x M x C) output.
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    The example usage is:

    .. code-block:: python

       rot = rotate_layer(input=layer,
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                          height=100,
                          width=100)
2283

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    :param input: The input of this layer.
2285
    :type input: LayerOutput
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    :param height: The height of the sample matrix.
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    :type height: int
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    :param width: The width of the sample matrix.
    :type width: int
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
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    l = Layer(
        name=name,
        height=height,
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        width=width,
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        type=LayerType.ROTATE_LAYER,
        inputs=[input.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.ROTATE_LAYER,
        parents=[input],
        size=l.config.size)
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@wrap_name_default()
@layer_support()
2315
def cos_sim(a, b, scale=1, size=1, name=None, layer_attr=None):
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    """
    Cosine Similarity Layer. The cosine similarity equation is here.

    ..  math::
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        similarity = cos(\\theta) = {\\mathbf{a} \\cdot \\mathbf{b}
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        \\over \\|\\mathbf{a}\\| \\|\\mathbf{b}\\|}

    The size of a is M, size of b is M*N,
    Similarity will be calculated N times by step M. The output size is
    N. The scale will be multiplied to similarity.
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    Note that the above computation is for one sample. Multiple samples are
    processed in one batch.
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    The example usage is:

    .. code-block:: python

       cos = cos_sim(a=layer1, b=layer2, size=3)

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param a: The first input of this layer.
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    :type a: LayerOutput
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    :param b: The second input of this layer.
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    :type b: LayerOutput
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    :param scale: The scale of the cosine similarity. 1 is the default value.
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    :type scale: float
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    :param size: The dimension of this layer. NOTE size_a * size should equal size_b.
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    :type size: int
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
2351
    assert isinstance(a, LayerOutput) and isinstance(b, LayerOutput)
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    if size == 1:
        Layer(
            name=name,
            type=LayerType.COSINE_SIM,
            cos_scale=scale,
            inputs=[a.name, b.name],
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            **ExtraLayerAttribute.to_kwargs(layer_attr))
2359
    else:
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        if a.size is not None and b.size is not None:
            assert size == b.size / a.size
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        Layer(
            name=name,
            type=LayerType.COSINE_SIM_VEC,
            size=size,
            cos_scale=scale,
            inputs=[a.name, b.name],
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            **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(name, LayerType.COSINE_SIM, parents=[a, b], size=size)
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2371

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@wrap_name_default()
@layer_support()
def l2_distance_layer(x, y, name=None, layer_attr=None):
    """
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    This layer calculates and returns the Euclidean distance between two input
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    vectors x and y. The equation is as follows:
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    ..  math::
        l2_distance(\\mathbf{x}, \\mathbf{y}) = \\sqrt{\\sum_{i=1}^D(x_i - y_i)}

    The output size of this layer is fixed to be 1. Note that the above
    computation is for one sample. Multiple samples are processed in one batch.

    The example usage is:

    .. code-block:: python

       l2_sim = l2_distance(x=layer1, y=layer2)

    :param name: The name of this layer. It is optional.
    :type name: basestring
    :param x: The first input x for this layer, whose output is a matrix with
              dimensionality N x D. N is the sample number in a mini-batch.
              D is the dimensionality of x's output.
    :type x: LayerOutput
    :param y: The second input y for this layer, whose output is a matrix with
              dimensionality N x D. N is the sample number in a mini-batch.
              D is the dimensionality of y's output.
    :type y: LayerOutput
    :param layer_attr: The extra layer attributes, for example, drop rate.
                       See ExtraLayerAttribute for more details.
    :type layer_attr: ExtraLayerAttribute
    :return: The returned LayerOutput object.
    :rtype: LayerOutput
    """

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    assert isinstance(x, LayerOutput) and isinstance(y, LayerOutput)
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    Layer(
        name=name,
        type=LayerType.L2_DISTANCE,
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        inputs=[x.name, y.name],
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(name, LayerType.L2_DISTANCE, parents=[x, y], size=1)


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@wrap_name_default()
@wrap_bias_attr_default(has_bias=True)
2419
@wrap_param_attr_default()
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@layer_support()
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def hsigmoid(input,
             label,
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             num_classes=None,
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             name=None,
             bias_attr=None,
             param_attr=None,
             layer_attr=None):
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    """
    Organize the classes into a binary tree. At each node, a sigmoid function
    is used to calculate the probability of belonging to the right branch.
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    Reference:
        `Hierarchical Probabilistic Neural Network Language Model
        <http://www.gatsby.ucl.ac.uk/aistats/fullpapers/208.pdf>`_
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    The example usage is:

    ..  code-block:: python

        cost = hsigmoid(input=[layer1, layer2],
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                        label=data_layer)
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    :param input: The input of this layer.
    :type input: LayerOutput | list | tuple
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    :param label: The input label.
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    :type label: LayerOutput
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    :param num_classes: The number of classes. And it should be larger than 2. If the parameter
                        is not set or set to None, its actual value will be automatically set to
                        the number of labels.
    :type num_classes: int
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    if isinstance(input, LayerOutput):
        input = [input]
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        if not isinstance(param_attr, collections.Sequence):
            param_attr = [param_attr]
    else:
        if not isinstance(param_attr, collections.Sequence):
            param_attr = [param_attr] * len(input)
        else:
            assert len(param_attr) == len(input)

    assert isinstance(input, collections.Sequence)
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    assert isinstance(label, LayerOutput)
    assert label.layer_type == LayerType.DATA

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    if num_classes is None:
        num_classes = label.size
    if num_classes is None or num_classes <= 2:
        raise ValueError("hsigmoid label size must larger than 2.")

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    ipts_for_layer = []
    parents = []
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    for each_input, each_param_attr in zip(input, param_attr):
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        assert isinstance(each_input, LayerOutput)
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        ipts_for_layer.append(Input(each_input.name, **each_param_attr.attr))
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        parents.append(each_input)
    ipts_for_layer.append(label.name)
    parents.append(label)

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    l = Layer(
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        name=name,
        type=LayerType.HSIGMOID,
        num_classes=num_classes,
        bias=ParamAttr.to_bias(bias_attr),
        inputs=ipts_for_layer,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.HSIGMOID, parents=parents, size=l.config.size)
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@wrap_name_default("conv")
@wrap_param_attr_default()
@wrap_bias_attr_default()
@wrap_act_default(act=ReluActivation())
@layer_support(DROPOUT)
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def img_conv_layer(input,
                   filter_size,
                   num_filters,
                   name=None,
                   num_channels=None,
                   act=None,
                   groups=1,
                   stride=1,
                   padding=0,
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                   dilation=1,
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                   bias_attr=None,
                   param_attr=None,
                   shared_biases=True,
                   layer_attr=None,
                   filter_size_y=None,
                   stride_y=None,
                   padding_y=None,
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                   dilation_y=None,
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                   trans=False,
                   layer_type=None):
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    """
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    Convolution layer for image. Paddle can support both square and non-square
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    input currently.
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    The details of convolution layer, please refer UFLDL's `convolution
    <http://ufldl.stanford.edu/tutorial/supervised/
    FeatureExtractionUsingConvolution/>`_ .
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    Convolution Transpose (deconv) layer for image. Paddle can support both square
2537
    and non-square input currently.
2538

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    The details of convolution transpose layer,
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    please refer to the following explanation and references therein
    <http://datascience.stackexchange.com/questions/6107/
    what-are-deconvolutional-layers/>`_ .
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    The num_channel means input image's channel number. It may be 1 or 3 when
    input is raw pixels of image(mono or RGB), or it may be the previous layer's
P
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    num_filters.
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    There are several groups of filters in PaddlePaddle implementation.
    Each group will process some channels of the input. For example, if
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    num_channel = 256, group = 4, num_filter=32, the PaddlePaddle will create
P
init  
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    32 filters to process the input. The input channels will be split into 4
    pieces. First 256/4 = 64 channels will be processed by first 32/4 = 8 filters.
    The rest channels will be processed by the rest groups of filters.
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    The example usage is:

    ..  code-block:: python

        conv = img_conv_layer(input=data, filter_size=1, filter_size_y=1,
                              num_channels=8,
                              num_filters=16, stride=1,
                              bias_attr=False,
                              act=ReluActivation())

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param filter_size: The dimensions of the filter kernel. If the parameter is
                        set to one integer, the two dimensions on x and y axises
                        will be same when filter_size_y is not set. If it is set
                        to a list, the first element indicates the dimension on
                        the x axis, and the second is used to specify the dimension
                        on the y axis when filter_size_y is not provided.
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    :type filter_size: int | tuple | list
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    :param filter_size_y: The dimension of the filter kernel on the y axis. If the parameter
                          is not set, it will be set automatically according to filter_size.
    :type filter_size_y: int
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    :param num_filters: The number of filters. It is as same as the output image channel.
    :type num_filters: int
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    :param act: Activation type. ReluActivation is the default activation.
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    :type act: BaseActivation
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    :param groups: The group number. 1 is the default group number.
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    :type groups: int
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    :param stride: The strides. If the parameter is set to one integer, the strides
                   on x and y axises will be same when stride_y is not set. If it is
                   set to a list, the first element indicates the stride on the x axis,
                   and the second is used to specify the stride on the y axis when
                   stride_y is not provided. 1 is the default value.
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    :type stride: int | tuple | list
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    :param stride_y: The stride on the y axis.
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    :type stride_y: int
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    :param padding: The padding sizes. If the parameter is set to one integer, the padding
                    sizes on x and y axises will be same when padding_y is not set. If it
                    is set to a list, the first element indicates the padding size on the
                    x axis, and the second is used to specify the padding size on the y axis
                    when padding_y is not provided. 0 is the default padding size.
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    :type padding: int | tuple | list
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    :param padding_y: The padding size on the y axis.
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    :type padding_y: int
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    :param dilation: The dimensions of the dilation. If the parameter is set to one integer,
                     the two dimensions on x and y axises will be same when dilation_y is not
                     set. If it is set to a list, the first element indicates the dimension
                     on the x axis, and the second is used to specify the dimension on the y
                     axis when dilation_y is not provided. 1 is the default dimension.
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    :type dilation: int | tuple | list
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    :param dilation_y: The dimension of the dilation on the y axis.
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    :type dilation_y: int
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channel number of the input.
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    :type num_channels: int
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    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
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    :type param_attr: ParameterAttribute
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    :param shared_biases: Whether biases will be shared between filters or not.
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    :type shared_biases: bool
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    :param layer_attr: The extra layer attributes. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :param trans: True if it is a convTransLayer, False if it is a convLayer
2625
    :type trans: bool
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    :param layer_type: Specify the layer type. If the dilation's dimension on one axis is
                       larger than 1, layer_type has to be "cudnn_conv" or "cudnn_convt".
                       If trans=True, layer_type has to be "exconvt" or "cudnn_convt",
                       otherwise layer_type has to be either "exconv" or "cudnn_conv".
    :type layer_type: basestring
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters
2637

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    if filter_size_y is None:
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        if isinstance(filter_size, collections.Sequence):
            assert len(filter_size) == 2
            filter_size, filter_size_y = filter_size
        else:
            filter_size_y = filter_size

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    if stride_y is None:
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        if isinstance(stride, collections.Sequence):
            assert len(stride) == 2
            stride, stride_y = stride
        else:
            stride_y = stride

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    if padding_y is None:
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        if isinstance(padding, collections.Sequence):
            assert len(padding) == 2
            padding, padding_y = padding
        else:
            padding_y = padding

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    if dilation_y is None:
        if isinstance(dilation, collections.Sequence):
            assert len(dilation) == 2
            dilation, dilation_y = dilation
        else:
            dilation_y = dilation

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    if param_attr.attr.get('initial_smart'):
        # special initial for conv layers.
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        init_w = (2.0 / (filter_size**2 * num_channels))**0.5
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        param_attr.attr["initial_mean"] = 0.0
        param_attr.attr["initial_std"] = init_w
        param_attr.attr["initial_strategy"] = 0
        param_attr.attr["initial_smart"] = False
2673

2674
    if layer_type:
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        if dilation > 1 or dilation_y > 1:
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            assert layer_type in [
                "cudnn_conv", "cudnn_convt", "exconv", "exconvt"
            ]
2679
        if trans:
2680
            assert layer_type in ["exconvt", "cudnn_convt"]
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        else:
            assert layer_type in ["exconv", "cudnn_conv"]
        lt = layer_type
    else:
        lt = LayerType.CONVTRANS_LAYER if trans else LayerType.CONV_LAYER
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    l = Layer(
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        name=name,
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        inputs=Input(
            input.name,
            conv=Conv(
                filter_size=filter_size,
                padding=padding,
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                dilation=dilation,
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                stride=stride,
                channels=num_channels,
                groups=groups,
                filter_size_y=filter_size_y,
                padding_y=padding_y,
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                dilation_y=dilation_y,
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                stride_y=stride_y),
            **param_attr.attr),
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        active_type=act.name,
        num_filters=num_filters,
        bias=ParamAttr.to_bias(bias_attr),
        shared_biases=shared_biases,
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        type=lt,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        lt,
        parents=[input],
        activation=act,
        num_filters=num_filters,
        size=l.config.size)
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@wrap_name_default("pool")
@layer_support()
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def img_pool_layer(input,
                   pool_size,
                   name=None,
                   num_channels=None,
                   pool_type=None,
                   stride=1,
                   padding=0,
                   layer_attr=None,
                   pool_size_y=None,
                   stride_y=None,
2730
                   padding_y=None,
2731
                   ceil_mode=True,
2732
                   exclude_mode=None):
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    """
    Image pooling Layer.

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    The details of pooling layer, please refer to ufldl's pooling_ .
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    .. _pooling: http://ufldl.stanford.edu/tutorial/supervised/Pooling/

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    - ceil_mode=True:

    ..  math::

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        w & = 1 + \\frac{ceil(input\_width + 2 * padding - pool\_size)}{stride}

        h & = 1 + \\frac{ceil(input\_height + 2 * padding\_y - pool\_size\_y)}{stride\_y}
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    - ceil_mode=False:

    ..  math::

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        w & = 1 + \\frac{floor(input\_width + 2 * padding - pool\_size)}{stride}

        h & = 1 + \\frac{floor(input\_height + 2 * padding\_y - pool\_size\_y)}{stride\_y}
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    The example usage is:

    ..  code-block:: python

        maxpool = img_pool_layer(input=conv,
                                 pool_size=3,
                                 pool_size_y=5,
                                 num_channels=8,
                                 stride=1,
                                 stride_y=2,
                                 padding=1,
                                 padding_y=2,
                                 pool_type=MaxPooling())

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    :param padding: The padding size on the x axis. 0 is the default padding size.
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    :type padding: int
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    :param padding_y: The padding size on the y axis. If the parameter is not set
                      or set to None, it will be set to 'padding' automatically.
    :param name: The name of this layer. It is optional.
    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param pool_size: The pooling window length on the x axis.
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    :type pool_size: int
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    :param pool_size_y: The pooling window length on the y axis. If the parameter is
                        not set or set to None, its actual value will be automatically
                        set to pool_size.
    :type pool_size_y: int
    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
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    :type num_channels: int
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    :param pool_type: Pooling type. MaxPooling is the default pooling.
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    :type pool_type: BasePoolingType
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    :param stride: The stride on the x axis. 1 is the default value.
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    :type stride: int
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    :param stride_y: The stride on the y axis. If the parameter is not set or set to
                     None, its actual value will be automatically set to 'stride'.
    :type stride_y: int
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
2798
    :param ceil_mode: Whether to use the ceil function to calculate output height and width.
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                      True is the default. If it is set to False, the floor function will
                      be used.
2801
    :type ceil_mode: bool
2802
    :param exclude_mode: Whether to exclude the padding cells when calculating, but only 
2803 2804 2805
                         work when pool_type is AvgPooling. If None, also exclude the padding 
                         cells. If use cudnn, use CudnnAvgPooling or CudnnAvgInclPadPooling 
                         as pool_type to identify the mode.
2806
    :type exclude_mode: bool
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    :return: LayerOutput object.
    :rtype: LayerOutput
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    """
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters

    if pool_type is None:
        pool_type = MaxPooling()
    elif isinstance(pool_type, AvgPooling):
        pool_type.name = 'avg'

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    assert type(pool_type) in [AvgPooling, MaxPooling, MaxWithMaskPooling, CudnnAvgPooling,
2820
                               CudnnMaxPooling, CudnnAvgInclPadPooling], \
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        "only (Cudnn)AvgPooling, (Cudnn)MaxPooling, MaxWithMaskPooling are supported"
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2823
    type_name = pool_type.name + '-projection' \
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        if (
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        isinstance(pool_type, AvgPooling) or isinstance(pool_type, MaxPooling)) \
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        else pool_type.name
2827 2828 2829 2830
    pool_size_y = pool_size if pool_size_y is None else pool_size_y
    stride_y = stride if stride_y is None else stride_y
    padding_y = padding if padding_y is None else padding_y

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    l = Layer(
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        name=name,
        type=LayerType.POOL_LAYER,
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        inputs=[
            Input(
                input.name,
                pool=Pool(
                    pool_type=type_name,
                    channels=num_channels,
                    size_x=pool_size,
                    start=None,
                    stride=stride,
                    padding=padding,
                    size_y=pool_size_y,
                    stride_y=stride_y,
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                    padding_y=padding_y))
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        ],
2848
        ceil_mode=ceil_mode,
2849
        exclude_mode=exclude_mode,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.POOL_LAYER,
        parents=[input],
        num_filters=num_channels,
        size=l.config.size)
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@wrap_name_default("pool3d")
@layer_support()
def img_pool3d_layer(input,
                     pool_size,
                     name=None,
                     num_channels=None,
                     pool_type=None,
                     stride=1,
                     padding=0,
                     layer_attr=None,
                     pool_size_y=None,
                     stride_y=None,
                     padding_y=None,
                     pool_size_z=None,
                     stride_z=None,
                     padding_z=None,
                     ceil_mode=True):
    """
    Image pooling Layer.

    The details of pooling layer, please refer ufldl's pooling_ .

    .. _pooling: http://ufldl.stanford.edu/tutorial/supervised/Pooling/

    - ceil_mode=True:

    ..  math::

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        w & = 1 + \\frac{ceil(input\_width + 2 * padding - pool\_size)}{stride}

        h & = 1 + \\frac{ceil(input\_height + 2 * padding\_y - pool\_size\_y)}{stride\_y}

        d & = 1 + \\frac{ceil(input\_depth + 2 * padding\_z - pool\_size\_z)}{stride\_z}
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    - ceil_mode=False:

    ..  math::

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        w & = 1 + \\frac{floor(input\_width + 2 * padding - pool\_size)}{stride}

        h & = 1 + \\frac{floor(input\_height + 2 * padding\_y - pool\_size\_y)}{stride\_y}

        d & = 1 + \\frac{floor(input\_depth + 2 * padding\_z - pool\_size\_z)}{stride\_z}
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    The example usage is:

    ..  code-block:: python

        maxpool = img_pool3d_layer(input=conv,
                                 pool_size=3,
                                 num_channels=8,
                                 stride=1,
                                 padding=1,
                                 pool_type=MaxPooling())

    :param padding: pooling padding width.
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    :type padding: int | tuple | list
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    :param name: The name of this layer. It is optional.
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    :type name: basestring.
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param pool_size: The pooling window lengths along three axises. If the parameter
                      is set to one integer, the three lengths will be same.
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    :type pool_size: int | tuple | list
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
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    :type num_channels: int
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    :param pool_type: Pooling type. MaxPooling is the default pooling.
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    :type pool_type: BasePoolingType
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    :param stride: The strides of the pooling along three axises. If the parameter
                   is set to one integer, the three strides will be same. 1 is the
                   default value.
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    :type stride: int | tuple | list
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    :param padding: The sizes of padding along three axises. If the parameter is set to
                    one integer, they will be same. 0 is the default padding size.
    :type padding: int | tuple | list
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :param ceil_mode: Wether to use the ceil function to calculate output height and width.
                      True is the default. If it is set to False, the floor function will
                      be used.
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    :type ceil_mode: bool
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters

    if pool_type is None:
        pool_type = MaxPooling()
    elif isinstance(pool_type, AvgPooling):
        pool_type.name = 'avg'

    type_name = pool_type.name + '-projection' \
        if (
        isinstance(pool_type, AvgPooling) or isinstance(pool_type, MaxPooling)) \
        else pool_type.name

    if isinstance(pool_size, collections.Sequence):
        assert len(pool_size) == 3
        pool_size, pool_size_y, pool_size_z = pool_size
    else:
        pool_size_y = pool_size
        pool_size_z = pool_size

    if isinstance(stride, collections.Sequence):
        assert len(stride) == 3
        stride, stride_y, stride_z = stride
    else:
        stride_y = stride
        stride_z = stride

    if isinstance(padding, collections.Sequence):
        assert len(padding) == 3
        padding, padding_y, padding_y = padding
    else:
        padding_y = padding
        padding_z = padding

    l = Layer(
        name=name,
        type=LayerType.POOL3D_LAYER,
        inputs=[
            Input(
                input.name,
                pool=Pool3d(
                    pool_type=type_name,
                    channels=num_channels,
                    size_x=pool_size,
                    start=None,
                    stride=stride,
                    padding=padding,
                    size_y=pool_size_y,
                    stride_y=stride_y,
                    padding_y=padding_y,
                    size_z=pool_size_z,
                    stride_z=stride_z,
                    padding_z=padding_z))
        ],
        ceil_mode=ceil_mode,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.POOL_LAYER,
        parents=[input],
        num_filters=num_channels,
        size=l.config.size)


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@wrap_name_default("spp")
@layer_support()
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def spp_layer(input,
              name=None,
              num_channels=None,
              pool_type=None,
              pyramid_height=None,
              layer_attr=None):
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    """
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    A layer performs spatial pyramid pooling.

    Reference:
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        `Spatial Pyramid Pooling in Deep Convolutional Networks for Visual Recognition
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        <https://arxiv.org/abs/1406.4729>`_
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    The example usage is:

    ..  code-block:: python

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        spp = spp_layer(input=data,
                        pyramid_height=2,
                        num_channels=16,
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                        pool_type=MaxPooling())

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
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    :type num_channels: int
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    :param pool_type: Pooling type. MaxPooling is the default pooling.
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    :type scale: BasePoolingType
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    :param pyramid_height: The pyramid height of this pooling.
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    :type pyramid_height: int
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters

    if pool_type is None:
        pool_type = MaxPooling()
    elif isinstance(pool_type, AvgPooling):
        pool_type.name = 'avg'

    type_name = pool_type.name
    if (isinstance(pool_type, AvgPooling) or isinstance(pool_type, MaxPooling)):
        type_name += '-projection'

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    l = Layer(
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        name=name,
        type=LayerType.SPP_LAYER,
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        inputs=Input(
            input.name,
            spp=SpatialPyramidPool(
                pool_type=type_name,
                channels=num_channels,
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                pyramid_height=pyramid_height)),
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        layer_type=LayerType.SPP_LAYER,
        parents=[input],
        num_filters=num_channels,
        size=l.config.size)


def __img_norm_layer__(name, input, size, norm_type, scale, power, num_channels,
                       blocked, layer_attr):
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    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters

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    l = Layer(
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        name=name,
        type=LayerType.NORM_LAYER,
        inputs=Input(
            input.name,
            norm=Norm(
                norm_type=norm_type,
                channels=num_channels,
                size=size,
                scale=scale,
                pow=power,
                blocked=blocked)),
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        layer_type=LayerType.NORM_LAYER,
        parents=[input],
        num_filters=num_channels,
        img_norm_type=norm_type,
        size=l.config.size)
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@wrap_name_default("crmnorm")
@layer_support()
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def img_cmrnorm_layer(input,
                      size,
                      scale=0.0128,
                      power=0.75,
                      name=None,
                      num_channels=None,
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                      layer_attr=None):
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    """
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    Response normalization across feature maps.
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    Reference:
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        `ImageNet Classification with Deep Convolutional Neural Networks
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        <http://www.cs.toronto.edu/~fritz/absps/imagenet.pdf>`_
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    The example usage is:

    ..  code-block:: python
3131

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        norm = img_cmrnorm_layer(input=net, size=5)

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param size: Normalize in number of :math:`size` feature maps.
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    :type size: int
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    :param scale: The hyper-parameter.
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    :type scale: float
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    :param power: The hyper-parameter.
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    :type power: float
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
    :param layer_attr: The extra layer attributes. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    return __img_norm_layer__(name, input, size, "cmrnorm-projection", scale,
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                              power, num_channels, 0, layer_attr)
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@wrap_bias_attr_default()
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@wrap_param_attr_default(
    default_factory=lambda _: ParamAttr(initial_mean=1.0, initial_std=0.))
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@wrap_act_default(act=ReluActivation())
@wrap_name_default("batch_norm")
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@layer_support(DROPOUT, ERROR_CLIPPING)
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def batch_norm_layer(input,
                     act=None,
                     name=None,
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                     img3D=False,
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                     num_channels=None,
                     bias_attr=None,
                     param_attr=None,
                     layer_attr=None,
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                     batch_norm_type=None,
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                     epsilon=1e-5,
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                     moving_average_fraction=0.9,
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                     use_global_stats=None,
                     mean_var_names=None):
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    """
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    Batch Normalization Layer. The notation of this layer is as follows.
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    :math:`x` is the input features over a mini-batch.

    ..  math::

        \\mu_{\\beta} &\\gets \\frac{1}{m} \\sum_{i=1}^{m} x_i \\qquad &//\\
        \ mini-batch\ mean \\\\
        \\sigma_{\\beta}^{2} &\\gets \\frac{1}{m} \\sum_{i=1}^{m}(x_i - \\
        \\mu_{\\beta})^2 \\qquad &//\ mini-batch\ variance \\\\
        \\hat{x_i} &\\gets \\frac{x_i - \\mu_\\beta} {\\sqrt{\\
        \\sigma_{\\beta}^{2} + \\epsilon}} \\qquad &//\ normalize \\\\
        y_i &\\gets \\gamma \\hat{x_i} + \\beta \\qquad &//\ scale\ and\ shift

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    Reference:
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        `Batch Normalization: Accelerating Deep Network Training by Reducing
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        Internal Covariate Shift
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        <http://arxiv.org/abs/1502.03167>`_
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    The example usage is:

    ..  code-block:: python
3199

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        norm = batch_norm_layer(input=net, act=ReluActivation())

3202
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: This layer's input which is to be performed batch normalization on.
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    :type input: LayerOutput
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    :param batch_norm_type: We have batch_norm, mkldnn_batch_norm and cudnn_batch_norm.
                            batch_norm supports CPU, MKLDNN and GPU. cudnn_batch_norm
                            requires cuDNN version greater or equal to v4 (>=v4).
                            But cudnn_batch_norm is faster and needs less
                            memory than batch_norm. mkldnn_batch_norm requires
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                            use_mkldnn is enabled. By default (None), we will
                            automatically select cudnn_batch_norm for GPU,
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                            mkldnn_batch_norm for MKLDNN and batch_norm for CPU.
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                            Users can specify the batch norm type. If you use
                            cudnn_batch_norm, we suggested you use latest version,
                            such as v5.1.
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    :type batch_norm_type: None | string, None or "batch_norm" or "cudnn_batch_norm"
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                           or "mkldnn_batch_norm"
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    :param act: Activation type. ReluActivation is the default activation.
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    :type act: BaseActivation
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
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    :type num_channels: int
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    :param bias_attr: :math:`\\beta`. The bias attribute. If the parameter is set to
                      False or an object whose type is not ParameterAttribute, no
                      bias is defined. If the parameter is set to True, the bias is
                      initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: :math:`\\gamma`. The parameter attribute. See ParameterAttribute
                       for details.
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    :type param_attr: ParameterAttribute
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :param use_global_stats: Whether use moving mean/variance statistics during
                             testing peroid. If the parameter is set to None or
                             True, it will use moving mean/variance statistics
                             during testing. If the parameter is set to False, it
                             will use the mean and variance of the current batch
                             of test data.
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    :type use_global_stats: bool | None.
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    :param epsilon: The small constant added to the variance to improve numeric stability.
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    :type epsilon: float.
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    :param moving_average_fraction: Factor used in the moving average computation.
                                   :math:`runningMean = newMean*(1-factor) + runningMean*factor`
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    :type moving_average_fraction: float.
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    :param mean_var_names: [mean name, variance name]
    :type mean_var_names: string list
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """

    if num_channels is None:
        if input.num_filters is not None:
            num_channels = input.num_filters
        else:
            num_channels = input.size
    assert (batch_norm_type is None) or (batch_norm_type == "batch_norm") or \
3260
           (batch_norm_type == "mkldnn_batch_norm") or \
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           (batch_norm_type == "cudnn_batch_norm")
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    l = Layer(
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        name=name,
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        img3D=img3D,
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        inputs=Input(
            input.name, image=Image(channels=num_channels), **param_attr.attr),
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        active_type=act.name,
        type=LayerType.BATCH_NORM_LAYER,
        batch_norm_type=batch_norm_type,
        bias=ParamAttr.to_bias(bias_attr),
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        epsilon=epsilon,
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        moving_average_fraction=moving_average_fraction,
        use_global_stats=use_global_stats,
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        mean_var_names=mean_var_names,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(
        name=name,
        layer_type=LayerType.BATCH_NORM_LAYER,
        parents=[input],
        activation=act,
        num_filters=num_channels,
        size=l.config.size)
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@wrap_name_default()
@layer_support()
def sum_to_one_norm_layer(input, name=None, layer_attr=None):
    """
    A layer for sum-to-one normalization,
    which is used in NEURAL TURING MACHINE.

    .. math::
       out[i] = \\frac {in[i]} {\sum_{k=1}^N in[k]}

    where :math:`in` is a (batchSize x dataDim) input vector,
    and :math:`out` is a (batchSize x dataDim) output vector.

    The example usage is:

    .. code-block:: python

       sum_to_one_norm = sum_to_one_norm_layer(input=layer)

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    :param input: The input of this layer.
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    :type input: LayerOutput
3308
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute
                       for details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    Layer(
        name=name,
        type=LayerType.SUM_TO_ONE_NORM_LAYER,
        inputs=[input.name],
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        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.SUM_TO_ONE_NORM_LAYER, parents=[input], size=input.size)
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@wrap_name_default()
@layer_support()
def row_l2_norm_layer(input, name=None, layer_attr=None):
    """
    A layer for L2-normalization in each row.

    .. math::
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       out[i] = \\frac{in[i]} {\\sqrt{\\sum_{k=1}^N in[k]^{2}}}
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    where the size of :math:`in` is (batchSize x dataDim) ,
    and the size of :math:`out` is a (batchSize x dataDim) .

    The example usage is:

    .. code-block:: python

       row_l2_norm_layer = row_l2_norm_layer(input=layer)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
R
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute
                       for details.
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    :type layer_attr: ExtraLayerAttribute.
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    Layer(
        name=name,
        type=LayerType.ROW_L2_NORM_LAYER,
        inputs=[input.name],
        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.ROW_L2_NORM_LAYER, parents=[input], size=input.size)


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@wrap_name_default("addto")
@wrap_act_default(act=LinearActivation())
@wrap_bias_attr_default(has_bias=False)
3365
@layer_support(DROPOUT, ERROR_CLIPPING)
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3366
def addto_layer(input, act=None, name=None, bias_attr=None, layer_attr=None):
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    """
    AddtoLayer.

    ..  math::

        y = f(\\sum_{i} x_i + b)

    where :math:`y` is output, :math:`x` is input, :math:`b` is bias,
    and :math:`f` is activation function.

    The example usage is:

    ..  code-block:: python

        addto = addto_layer(input=[layer1, layer2],
                            act=ReluActivation(),
                            bias_attr=False)

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    This layer just simply adds all input layers together, then activates the
    sum. All inputs should share the same dimension, which is also the dimension
    of this layer's output.
Z
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3388

C
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    There is no weight matrix for each input, because it just a simple add
    operation. If you want a complicated operation before add, please use
    mixed_layer.
Z
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3392

3393
    :param name: The name of this layer. It is optional.
Z
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3394
    :type name: basestring
R
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3395
    :param input: The input layers. It could be a LayerOutput or list/tuple of
Z
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3396
                 LayerOutput.
R
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3397
    :type input: LayerOutput | list | tuple
3398
    :param act: Activation Type. LinearActivation is the default activation.
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    :type act: BaseActivation
R
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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3407
    :return: LayerOutput object.
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3408 3409 3410 3411 3412 3413
    :rtype: LayerOutput
    """
    num_filters = None
    if isinstance(input, LayerOutput):
        input = [input]

3414
    assert isinstance(input, collections.Sequence)
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    ipts_for_layer = []
    for each_input in input:
        assert isinstance(each_input, LayerOutput)
        ipts_for_layer.append(Input(each_input.name))
        if each_input.num_filters is not None:
            num_filters = each_input.num_filters

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3422
    l = Layer(
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        name=name,
        type=LayerType.ADDTO_LAYER,
        inputs=ipts_for_layer,
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        bias=ParamAttr.to_bias(bias_attr),
        active_type=act.name,
Q
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
3429

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    return LayerOutput(
        name,
        LayerType.ADDTO_LAYER,
        parents=input,
        activation=act,
        num_filters=num_filters,
        size=l.config.size)
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3437 3438 3439 3440


@wrap_act_default(act=IdentityActivation())
@wrap_name_default("concat")
3441
@layer_support(DROPOUT, ERROR_CLIPPING)
3442
def concat_layer(input, act=None, name=None, layer_attr=None, bias_attr=None):
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    """
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    Concatenate all input vectors to one vector.
    Inputs can be a list of LayerOutput or a list of projection.
Z
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3447 3448 3449 3450 3451 3452
    The example usage is:

    ..  code-block:: python

        concat = concat_layer(input=[layer1, layer2])

3453
    :param name: The name of this layer. It is optional.
Z
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3454
    :type name: basestring
R
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    :param input: The input layers or projections
R
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3456
    :type input: list | tuple | collections.Sequence
3457
    :param act: Activation type. IdentityActivation is the default activation.
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    :type act: BaseActivation
R
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """

    if isinstance(input, LayerOutput):
        input = [input]
    elif isinstance(input, Projection):
        input = [input]
    else:
3471
        assert isinstance(input, collections.Sequence)
Z
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3472 3473

    def __is_type__(o, tp):
3474
        if not isinstance(o, collections.Sequence):
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            if o == tp:
                return True
            elif len(o.__bases__) == 0:
                return False
            else:
                for bs in o.__bases__:
                    if __is_type__(bs, tp):
                        return True
                return False
        else:
            tmp = map(lambda _x: __is_type__(_x, tp), o)
            a = tmp[0]
            for b in tmp[1:]:
                assert a == b
            return a

    def __reduce_concat_type__(a, b):
        assert __is_type__([a, b], Projection) or __is_type__([a, b],
                                                              LayerOutput)
        return a

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    is_concat_layer = __is_type__(
        reduce(__reduce_concat_type__, map(type, input)), LayerOutput)
Z
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3498

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    layer_type = (LayerType.CONCAT_LAYER
                  if is_concat_layer else LayerType.CONCAT_PROJ_LAYER)
Z
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3501

3502 3503
    if layer_type == LayerType.CONCAT_LAYER:
        assert not bias_attr
3504

3505
    layer = Layer(
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        name=name,
        type=layer_type,
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        inputs=[x.name for x in input] if is_concat_layer else input,
        active_type=act.name,
3510
        bias=ParamAttr.to_bias(bias_attr),
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
Z
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3512

3513
    sz = layer.config.size
Z
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3514

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    return LayerOutput(
        name,
        layer_type=layer_type,
        parents=input if is_concat_layer else [x.origin for x in input],
        activation=act,
        size=sz)


3523 3524
@wrap_name_default("seqconcat")
@wrap_act_default(act=IdentityActivation())
3525
@wrap_bias_attr_default(has_bias=False)
3526
@layer_support(DROPOUT, ERROR_CLIPPING)
3527 3528 3529
def seq_concat_layer(a, b, act=None, name=None, layer_attr=None,
                     bias_attr=None):
    """
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    Concatenate sequence a and sequence b.
3531

3532
    Inputs:
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      - a = [a1, a2, ..., am]
3534
      - b = [b1, b2, ..., bn]
3535

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    Output: [a1, ..., am, b1, ..., bn]

    Note that the above computation is for one sample. Multiple samples are
    processed in one batch.
3540 3541 3542 3543 3544 3545 3546

    The example usage is:

    ..  code-block:: python

        concat = seq_concat_layer(a=layer1, b=layer2)

3547
    :param name: The name of this layer. It is optional.
3548
    :type name: basestring
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    :param a: The first input sequence layer
3550
    :type a: LayerOutput
R
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    :param b: The second input sequence layer
3552
    :type b: LayerOutput
3553
    :param act: Activation type. IdentityActivation is the default activation.
3554
    :type act: BaseActivation
R
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
3557
    :type layer_attr: ExtraLayerAttribute
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
R
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3561
    :type bias_attr: ParameterAttribute | None | bool | Any
3562 3563 3564 3565 3566 3567 3568 3569 3570 3571 3572 3573 3574 3575 3576 3577 3578 3579 3580 3581 3582
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(a, LayerOutput) and isinstance(b, LayerOutput)
    assert a.size == b.size
    Layer(
        name=name,
        type=LayerType.SEQUENCE_CONCAT_LAYER,
        inputs=[a.name, b.name],
        active_type=act.name,
        bias=ParamAttr.to_bias(bias_attr),
        **ExtraLayerAttribute.to_kwargs(layer_attr))

    return LayerOutput(
        name,
        layer_type=LayerType.SEQUENCE_CONCAT_LAYER,
        parents=[a, b],
        activation=act,
        size=a.size)


3583
@wrap_name_default("memory", "memory_name")
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def memory(name,
           size,
3586
           memory_name=None,
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3587 3588 3589 3590
           is_seq=False,
           boot_layer=None,
           boot_bias=None,
           boot_bias_active_type=None,
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           boot_with_const_id=None):
    """
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3593
    The memory takes a layer's output at previous time step as its own output.
Z
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3594

R
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3595
    If boot_bias, the activation of the bias is the initial value of the memory.
Z
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3596

R
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    If boot_with_const_id is set, then the memory's output at the first time step
    is a IndexSlot, the Arguments.ids()[0] is this :code:`cost_id`.
Z
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R
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3600 3601
    If boot_layer is specified, the memory's output at the first time step will
    be the boot_layer's output.
Z
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R
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3603
    In other case, the default memory's output at the first time step is zero.
Z
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3605 3606 3607 3608 3609
    .. code-block:: python

       mem = memory(size=256, name='state')
       state = fc_layer(input=mem, size=256, name='state')

R
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3610 3611
    If you do not want to specify the name, you can also use set_input()
    to specify the layer to be remembered as the following:
3612 3613

    .. code-block:: python
L
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3614

3615 3616 3617 3618
       mem = memory(size=256)
       state = fc_layer(input=mem, size=256)
       mem.set_input(mem)

R
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3619
    :param name: The name of the layer which this memory remembers.
3620 3621
                 If name is None, user should call set_input() to specify the
                 name of the layer which this memory remembers.
Z
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3622
    :type name: basestring
R
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3623
    :param size: The dimensionality of memory.
Z
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3624
    :type size: int
R
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3625
    :param memory_name: The name of the memory. It is ignored when name is provided.
3626
    :type memory_name: basestring
3627
    :param is_seq: DEPRECATED. is sequence for boot_layer
Z
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3628
    :type is_seq: bool
R
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3629 3630
    :param boot_layer: This parameter specifies memory's output at the first time
                       step and the output is boot_layer's output.
R
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3631
    :type boot_layer: LayerOutput | None
R
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3632 3633 3634 3635
    :param boot_bias: The bias attribute of memory's output at the first time step.
                      If the parameter is set to False or an object whose type is not
                      ParameterAttribute, no bias is defined. If the parameter is set
                      to True, the bias is initialized to zero.
R
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3636
    :type boot_bias: ParameterAttribute | None
R
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3637 3638
    :param boot_bias_active_type: Activation type for memory's bias at the first time
                                  step. LinearActivation is the default activation.
Z
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3639
    :type boot_bias_active_type: BaseActivation
R
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3640 3641
    :param boot_with_const_id: This parameter specifies memory's output at the first
                               time step and the output is an index.
Z
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3642
    :type boot_with_const_id: int
R
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3643
    :return: LayerOutput object.
Z
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3644 3645 3646 3647 3648 3649 3650 3651 3652 3653
    :rtype: LayerOutput
    """
    if boot_bias_active_type is None:
        boot_bias_active_type = LinearActivation()

    assert boot_bias is None or isinstance(boot_bias, ParameterAttribute)
    if isinstance(boot_bias, ParameterAttribute):
        boot_bias = ParamAttr.to_bias(boot_bias)

    assert boot_layer is None or isinstance(boot_layer, LayerOutput)
3654 3655
    if name is not None:
        memory_name = None
Z
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3656

3657 3658 3659 3660 3661 3662 3663 3664
    memory_name = Memory(
        name,
        size,
        boot_layer=boot_layer.name if boot_layer is not None else None,
        boot_bias=boot_bias,
        boot_bias_active_type=boot_bias_active_type.name,
        boot_with_const_id=boot_with_const_id,
        memory_name=memory_name)
Q
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3665 3666

    lout = LayerOutput(
3667
        name=memory_name,
Q
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3668 3669 3670
        size=size,
        layer_type=LayerType.MEMORY,
        parents=[boot_layer] if boot_layer is not None else None)
Z
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3671 3672 3673 3674
    return lout


@wrap_bias_attr_default()
3675 3676
@wrap_act_default(param_names=['gate_act'], act=SigmoidActivation())
@wrap_act_default(param_names=['state_act'], act=TanhActivation())
Z
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3677 3678 3679
@wrap_act_default(act=TanhActivation())
@wrap_name_default('lstm_step')
@layer_support()
Q
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3680 3681
def lstm_step_layer(input,
                    state,
3682
                    size=None,
Q
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3683 3684 3685 3686 3687 3688
                    act=None,
                    name=None,
                    gate_act=None,
                    state_act=None,
                    bias_attr=None,
                    layer_attr=None):
Z
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3689
    """
3690 3691
    LSTM Step Layer. This function is used only in recurrent_group.
    The lstm equations are shown as follows.
Z
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3692 3693 3694

    ..  math::

3695
        i_t & = \\sigma(W_{x_i}x_{t} + W_{h_i}h_{t-1} + W_{c_i}c_{t-1} + b_i)
Z
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3696

3697
        f_t & = \\sigma(W_{x_f}x_{t} + W_{h_f}h_{t-1} + W_{c_f}c_{t-1} + b_f)
Z
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3698

3699
        c_t & = f_tc_{t-1} + i_t tanh (W_{x_c}x_t+W_{h_c}h_{t-1} + b_c)
Z
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3700

3701
        o_t & = \\sigma(W_{x_o}x_{t} + W_{h_o}h_{t-1} + W_{c_o}c_t + b_o)
Z
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3702

L
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3703
        h_t & = o_t tanh(c_t)
Z
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3704 3705


L
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3706
    The input of lstm step is :math:`Wx_t + Wh_{t-1}`, and user should use
Z
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3707
    :code:`mixed_layer` and :code:`full_matrix_projection` to calculate these
3708
    input vectors.
Z
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3709 3710 3711 3712 3713 3714 3715 3716 3717 3718

    The state of lstm step is :math:`c_{t-1}`. And lstm step layer will do

    ..  math::

        i_t = \\sigma(input + W_{ci}c_{t-1} + b_i)

        ...


3719
    This layer has two outputs. The default output is :math:`h_t`. The other
R
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3720
    output is :math:`o_t`, whose name is 'state' and users can use
Z
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3721 3722
    :code:`get_output_layer` to extract this output.

3723
    :param name: The name of this layer. It is optional.
Z
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3724
    :type name: basestring
R
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3725 3726
    :param size: The dimension of this layer's output, which must be
                 equal to the dimension of the state.
Z
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3727
    :type size: int
R
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3728
    :param input: The input of this layer.
Z
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3729
    :type input: LayerOutput
3730
    :param state: The state of the LSTM unit.
Z
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3731
    :type state: LayerOutput
3732
    :param act: Activation type. TanhActivation is the default activation.
Z
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3733
    :type act: BaseActivation
3734 3735
    :param gate_act: Activation type of the gate. SigmoidActivation is the
                     default activation.
Z
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3736
    :type gate_act: BaseActivation
3737 3738
    :param state_act: Activation type of the state. TanhActivation is the
                      default activation.
Z
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3739
    :type state_act: BaseActivation
R
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3740 3741 3742
    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
R
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3743
    :type bias_attr: ParameterAttribute | None | bool | Any
R
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3744
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for details.
Z
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3745
    :type layer_attr: ExtraLayerAttribute
D
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3746
    :return: LayerOutput object.
Z
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3747 3748
    :rtype: LayerOutput
    """
3749 3750 3751

    assert size is None or state.size == size
    size = state.size
Z
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3752 3753 3754 3755 3756 3757 3758
    Layer(
        name=name,
        type=LayerType.LSTM_STEP_LAYER,
        active_type=act.name,
        active_gate_type=gate_act.name,
        active_state_type=state_act.name,
        bias=ParamAttr.to_bias(bias_attr),
3759
        size=state.size,
Q
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3760 3761
        inputs=[input.name, state.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
Z
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3762

Q
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3763 3764 3765 3766 3767 3768 3769
    return LayerOutput(
        name=name,
        layer_type=LayerType.LSTM_STEP_LAYER,
        parents=[input, state],
        activation=act,
        size=size,
        outputs=['default', 'state'])
Z
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3770 3771 3772


@wrap_bias_attr_default()
W
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3773
@wrap_param_attr_default()
Q
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3774
@wrap_act_default(param_names=['gate_act'], act=SigmoidActivation())
Z
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3775 3776 3777
@wrap_act_default(act=TanhActivation())
@wrap_name_default('gru_step')
@layer_support()
Q
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3778 3779 3780 3781 3782 3783 3784
def gru_step_layer(input,
                   output_mem,
                   size=None,
                   act=None,
                   name=None,
                   gate_act=None,
                   bias_attr=None,
W
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3785
                   param_attr=None,
Q
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3786
                   layer_attr=None):
Z
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3787 3788
    """

R
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3789
    :param input: The input of this layer, whose dimension can be divided by 3.
Z
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3790
    :type input: LayerOutput
R
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3791 3792 3793 3794 3795 3796
    :param output_mem: A memory which memorizes the output of this layer at previous
                       time step.
    :type output_mem: LayerOutput
    :param size: The dimension of this layer's output. If it is not set or set to None,
                 it will be set to one-third of the dimension of the input automatically.
    :type size: int
3797 3798
    :param act: Activation type of this layer's output. TanhActivation
                is the default activation.
R
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3799
    :type act: BaseActivation
3800
    :param name: The name of this layer. It is optional.
R
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    :type name: basestring
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    :param gate_act: Activation type of this layer's two gates. SigmoidActivation is
                     the default activation.
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    :type gate_act: BaseActivation
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    :param bias_attr: The parameter attribute for bias. If this parameter is set to
                      False or an object whose type is not ParameterAttribute, no bias
                      is defined. If this parameter is set to True,
                      the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    assert input.size % 3 == 0
    if size is None:
        size = input.size / 3
    Layer(
        name=name,
        type=LayerType.GRU_STEP_LAYER,
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        # The parameter here is for transforming the output_mem. The input has
        # already been transformed outside this module so it does not need
        # parameter associated with it.
        # The parameter here is instead grouped with input is due to
3827
        # backward model compatibility.
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        inputs=[Input(input.name, **param_attr.attr), output_mem.name],
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        bias=ParamAttr.to_bias(bias_attr),
        size=size,
        active_type=act.name,
        active_gate_type=gate_act.name,
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        **ExtraAttr.to_kwargs(layer_attr))
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    return LayerOutput(
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        name=name,
        layer_type=LayerType.GRU_STEP_LAYER,
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        parents=[input, output_mem],
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        size=size,
        activation=act)
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@wrap_bias_attr_default()
@wrap_param_attr_default()
@wrap_act_default(param_names=['gate_act'], act=SigmoidActivation())
@wrap_act_default(act=TanhActivation())
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@wrap_name_default('gru_step_naive')
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@layer_support(ERROR_CLIPPING, DROPOUT)
def gru_step_naive_layer(input,
                         output_mem,
                         size=None,
                         name=None,
                         act=None,
                         gate_act=None,
                         bias_attr=None,
                         param_attr=None,
                         layer_attr=None):
    """
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    GRU Step Layer, which is realized using PaddlePaddle API. It supports ERROR_CLIPPING
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    and DROPOUT.

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    :param input: The input of this layer, whose dimensionality can be divided by 3.
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    :param output_mem: A memory which memorizes the output of this layer at previous
                       time step.
    :type output_mem: LayerOutput
    :param size: The dimension of this layer's output. If it is not set or set to None,
                 it will be set to one-third of the dimension of the input automatically.
    :type size: int
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param act: Activation type of this layer's output. TanhActivation
                is the default activation.
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    :type act: BaseActivation
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    :param gate_act: Activation type of this layer's two gates. SigmoidActivation
                     is the default activation.
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    :type gate_act: BaseActivation
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    :param bias_attr: The parameter attribute for bias. If this parameter is set to
                      False or an object whose type is not ParameterAttribute, no bias
                      is defined. If this parameter is set to True,
                      the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: The parameter attribute. See ParameterAttribute for details.
    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for details.
    :type layer_attr: ExtraLayerAttribute
    :return: LayerOutput object.
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    :rtype: LayerOutput
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    """
    if input.size % 3 != 0:
        raise ValueError("GruStep input size must be divided by 3")
    if size is None:
        size = input.size / 3

3893
    if bias_attr and bias_attr.attr.get("parameter_name", None) is not None:
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        raise ValueError("You should not specify the field `name` in bias_attr."
                         " Otherwise, the three biases, which correponding to "
                         " the two gates and the mixed layer for computing Wx+b"
                         ", will share the same parameter matrix unexpectedly.")
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    def __gate__(gate_name, offset):
        with mixed_layer(
                name=name + "_" + gate_name,
                size=size,
                layer_attr=layer_attr,
                bias_attr=bias_attr,
                act=gate_act) as gate:
            gate += identity_projection(input=input, offset=offset)
            gate += full_matrix_projection(
                input=output_mem, param_attr=param_attr)
        return gate

    update_gate = __gate__("update", 0)
    reset_gate = __gate__("reset", size)

    with mixed_layer(
            name=name + "_reset_output", bias_attr=False) as reset_output:
        reset_output += dotmul_operator(a=output_mem, b=reset_gate)

    with mixed_layer(
            name=name + "_output_candidate",
            size=size,
            layer_attr=layer_attr,
            bias_attr=bias_attr,
            act=act) as output_candidate:
        output_candidate += identity_projection(input=input, offset=2 * size)
        output_candidate += full_matrix_projection(
            input=reset_output, param_attr=param_attr)

    with mixed_layer(name=name) as output:
        output += identity_projection(output_mem)
        output += dotmul_operator(a=output_mem, b=update_gate, scale=-1.0)
        output += dotmul_operator(a=output_candidate, b=update_gate)

    return output


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@wrap_name_default()
@layer_support()
def get_output_layer(input, arg_name, name=None, layer_attr=None):
    """
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    Get layer's output by name. In PaddlePaddle, a layer might return multiple
    values, but returns one layer's output. If the user wants to use another
    output besides the default one, please use get_output_layer first to get
    the output from input.
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input layer. And this layer should contain
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                   multiple outputs.
    :type input: LayerOutput
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    :param arg_name: The name of the output to be extracted from the input layer.
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    :type arg_name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    # GetOutputLayer
    assert arg_name in input.outputs, 'Get Output From an not existed input.' \
                                      ' The get output name is %s, which not' \
                                      ' in %s' % (
                                          arg_name, ",".join(input.outputs))
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    Layer(
        name=name,
        type=LayerType.GET_OUTPUT_LAYER,
        inputs=[Input(
            input.name, input_layer_argument=arg_name)],
        size=input.size,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(
        name=name,
        layer_type=LayerType.GET_OUTPUT_LAYER,
        parents=[input],
        size=input.size)
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@wrap_name_default()
@wrap_act_default()
@wrap_bias_attr_default()
@wrap_param_attr_default()
@layer_support()
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def recurrent_layer(input,
                    act=None,
                    bias_attr=None,
                    param_attr=None,
                    name=None,
                    reverse=False,
                    layer_attr=None):
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    """
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    Simple recurrent unit layer. It is just a fully connect layer through both
    time and neural network.
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    For each sequence [start, end] it performs the following computation\:

    ..  math::

        out_{i} = act(in_{i})     \\      \\      \\text{for} \\ i = start \\\\
        out_{i} = act(in_{i} + out_{i-1} * W) \\ \\ \\text{for} \\ start < i <= end

    If reversed is true, the order is reversed\:

    ..  math::

        out_{i} = act(in_{i})           \\    \\   \\text{for} \\ i = end  \\\\
        out_{i} = act(in_{i} + out_{i+1} * W) \\ \\ \\text{for} \\ start <= i < end


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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param act: Activation type. TanhActivation is the default activation.
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    :type act: BaseActivation
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    :param bias_attr: The parameter attribute for bias. If this parameter is set to
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                      False or an object whose type is not ParameterAttribute,
                      no bias is defined. If the parameter is set to True,
                      the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
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    :type param_attr: ParameterAttribute
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
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    """
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    Layer(
        name=name,
        type=LayerType.RECURRENT_LAYER,
        inputs=Input(input.name, **param_attr.attr),
        active_type=act.name,
        bias=ParamAttr.to_bias(bias_attr),
        reversed=reverse,
        **ExtraAttr.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.RECURRENT_LAYER,
        parents=[input],
        size=input.size,
        activation=act,
        reverse=reverse)
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class StaticInput(object):
    """
    StaticInput is only used in recurrent_group which defines a read-only memory
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    and can be a sequence or non-sequence.
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    :param size: DEPRECATED
    :param is_seq: DEPRECATED
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    """
4052

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    def __init__(self, input, is_seq=False, size=None):
        assert isinstance(input, LayerOutput)
        self.input = input
4056
        assert input.size is not None
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        if size is not None:
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            assert input.size == size
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4061
def SubsequenceInput(input):
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    """
4063
    DEPRECATED.
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    Input sequence has sub-sequence, used in recurrent_group.

    The example usage is:

    .. code-block:: python

       input = SubsequenceInput(layer)
    """
4072
    return input
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@wrap_name_default("recurrent_group")
4076
def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
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    """
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    Recurrent layer group is an extremely flexible recurrent unit in
    PaddlePaddle. As long as the user defines the calculation done within a
    time step, PaddlePaddle will iterate such a recurrent calculation over
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    sequence input. This is useful for attention-based models, or Neural
    Turning Machine like models.
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    The basic usage (time steps) is:

    .. code-block:: python

       def step(input):
           output = fc_layer(input=layer,
                             size=1024,
                             act=LinearActivation(),
                             bias_attr=False)
           return output

       group = recurrent_group(input=layer,
                               step=step)

    You can see following configs for further usages:

    - time steps: lstmemory_group, paddle/gserver/tests/sequence_layer_group.conf, \
                  demo/seqToseq/seqToseq_net.py
    - sequence steps: paddle/gserver/tests/sequence_nest_layer_group.conf

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    :param step: A step function which takes the input of recurrent_group as its own
                 input and returns values as recurrent_group's output every time step.
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                 The recurrent group scatters a sequence into time steps. And
                 for each time step, it will invoke step function, and return
                 a time step result. Then gather outputs of each time step into
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                 layer group's output.

    :type step: callable

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    :param name: The recurrent_group's name. It is optional.
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    :type name: basestring

    :param input: Input links array.

                  LayerOutput will be scattered into time steps.
                  SubsequenceInput will be scattered into sequence steps.
                  StaticInput will be imported to each time step, and doesn't change
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                  over time. It's a mechanism to access layer outside step function.
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    :type input: LayerOutput | StaticInput | SubsequenceInput | list | tuple
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    :param reverse: If reverse is set to True, the recurrent unit will process the
4127
                    input sequence in a reverse order.
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    :type reverse: bool
4129

4130 4131
    :param targetInlink: DEPRECATED.
                         The input layer which share info with layer group's output
4132 4133 4134 4135 4136 4137 4138

                         Param input specifies multiple input layers. For
                         SubsequenceInput inputs, config should assign one input
                         layer that share info(the number of sentences and the number
                         of words in each sentence) with all layer group's outputs.
                         targetInlink should be one of the layer group's input.

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    :type targetInlink: LayerOutput | SubsequenceInput
4140

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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    model_type('recurrent_nn')

4146
    if isinstance(input, LayerOutput) or isinstance(input, StaticInput):
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        input = [input]
4148
    assert isinstance(input, collections.Sequence)
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    def is_in_links(x):
4151
        return isinstance(x, LayerOutput)
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    in_links = filter(is_in_links, input)

    RecurrentLayerGroupWithoutOutLinksBegin(
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        name=name,
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        in_links=map(lambda x: x.name, in_links),
        seq_reversed=reverse)
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    in_args = []
    for each_input in input:
4161
        if isinstance(each_input, StaticInput):  # StaticInput
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            mem_name = "__%s_memory__" % each_input.input.name
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            mem = memory(
4164
                name=None,
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                size=each_input.input.size,
                boot_layer=each_input.input)
4167
            mem.set_input(mem)
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            in_args.append(mem)
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        else:
            in_args.append(each_input)
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    layer_outs = step(*in_args)

    if isinstance(layer_outs, LayerOutput):
        layer_outs = [layer_outs]

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    for layer_out in layer_outs:
        assert isinstance(
            layer_out, LayerOutput
        ), "Type of step function's return value must be LayerOutput."
        layer_out.reverse = reverse
        RecurrentLayerGroupSetOutLink(layer_out.name)
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    RecurrentLayerGroupEnd(name=name)

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    for layer_out in layer_outs:
4187 4188
        # The previous full_name is the name inside the recurrent group.
        # We need a full_name outside the recurrent group.
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        layer_out.full_name = MakeLayerNameInSubmodel(layer_out.name)

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    if len(layer_outs) == 1:
        return layer_outs[0]
    else:
        return layer_outs

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class BaseGeneratedInput(object):
    def __init__(self):
        self.bos_id = None
        self.eos_id = None

    def before_real_step(self):
        raise NotImplementedError()

    def after_real_step(self, *args):
        raise NotImplementedError()


class GeneratedInput(BaseGeneratedInput):
    def after_real_step(self, input):
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        if isinstance(input, LayerOutput):
            input = [input]
        elif isinstance(input, collections.Sequence):
            input = list(input)
            if len(input) > 1:
                logger.info(
                    ("More than one layers inside the recurrent_group "
                     "are returned as outputs of the entire recurrent_group "
                     "PLEASE garantee the first output is probability of "
                     "the predicted next word."))

        return [maxid_layer(
            input=input[0], name='__beam_search_predict__')] + (
                input[1:] if len(input) > 1 else [])
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    def before_real_step(self):
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        predict_id = memory(
            name='__beam_search_predict__',
            size=self.size,
            boot_with_const_id=self.bos_id)

        trg_emb = embedding_layer(
            input=predict_id,
            size=self.embedding_size,
            param_attr=ParamAttr(name=self.embedding_name))
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        return trg_emb

    def __init__(self, size, embedding_name, embedding_size):
4239
        super(GeneratedInput, self).__init__()
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        self.size = size
        self.embedding_name = embedding_name
        self.embedding_size = embedding_size


@wrap_name_default()
def maxid_layer(input, name=None, layer_attr=None):
    """
    A layer for finding the id which has the maximal value for each sample.
    The result is stored in output.ids.

    The example usage is:

    .. code-block:: python

       maxid = maxid_layer(input=layer)

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    :param input: The input of this layer.
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    :type input: LayerOutput
4259
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """

    assert isinstance(input, LayerOutput)
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    l = Layer(
        name=name,
        type='maxid',
        inputs=[input.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.MAXID_LAYER,
        parents=[input],
        size=l.config.size)
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@wrap_name_default()
def dot_prod_layer(input1, input2, name=None, layer_attr=None):
    """
    A layer for computing the dot product of two vectors.

    The example usage is:

    .. code-block:: python

        dot_prod = dot_prod_layer(input1=vec1, input2=vec2)

    :param name: The name of this layer. It is optional.
    :type name: basestring
    :param input1: The first input layer.
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    :type input1: LayerOutput
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    :param input2: The second input layer.
    :type input2: LayerOutput
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute.
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input1, LayerOutput)
    assert isinstance(input2, LayerOutput)
    assert input1.size == input2.size, ("Two inputs should have the same size.")

    l = Layer(
        name=name,
        type=LayerType.DOT_PROD_LAYER,
        inputs=[input1.name, input2.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.DOT_PROD_LAYER,
        parents=[input1, input2],
        size=l.config.size)


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@wrap_name_default()
def out_prod_layer(input1, input2, name=None, layer_attr=None):
    """
    A layer for computing the outer product of two vectors
    The result is a matrix of size(input1) x size(input2)

    The example usage is:

    .. code-block:: python

       out_prod = out_prod_layer(input1=vec1, input2=vec2)

4332
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input1: The first input layer.
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    :type input: LayerOutput
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    :param input2: The second input layer.
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    :type input2: LayerOutput
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    assert isinstance(input1, LayerOutput)
    assert isinstance(input2, LayerOutput)
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    l = Layer(
        name=name,
        type=LayerType.OUT_PROD_LAYER,
        inputs=[input1.name, input2.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.OUT_PROD_LAYER,
        parents=[input1, input2],
        size=l.config.size)
4357

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@wrap_name_default()
def eos_layer(input, eos_id, name=None, layer_attr=None):
    """
    A layer for checking EOS for each sample:
    - output_id = (input_id == conf.eos_id)

    The result is stored in output\_.ids.
    It is used by recurrent layer group.

    The example usage is:

    .. code-block:: python

       eos = eos_layer(input=layer, eos_id=id)

4374
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param eos_id: End id of sequence
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    :type eos_id: int
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    l = Layer(
        name=name,
        type=LayerType.EOSID_LAYER,
        eos_id=eos_id,
        inputs=[input.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.EOSID_LAYER,
        parents=[input],
        size=l.config.size)
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@wrap_name_default()
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def beam_search(step,
                input,
                bos_id,
                eos_id,
                beam_size,
                max_length=500,
                name=None,
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                num_results_per_sample=None):
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    """
    Beam search is a heuristic search algorithm used in sequence generation.
    It explores a graph by expanding the most promising nodes in a limited set
    to maintain tractability.

    The example usage is:

    .. code-block:: python

        def rnn_step(input):
            last_time_step_output = memory(name='rnn', size=512)
4419
            with mixed_layer(size=512, name='rnn') as simple_rnn:
4420 4421 4422 4423
                simple_rnn += full_matrix_projection(input)
                simple_rnn += last_time_step_output
            return simple_rnn

4424 4425 4426 4427 4428
        generated_word_embedding = GeneratedInput(
                               size=target_dictionary_dim,
                               embedding_name="target_language_embedding",
                               embedding_size=word_vector_dim)

4429 4430
        beam_gen = beam_search(name="decoder",
                               step=rnn_step,
4431 4432
                               input=[StaticInput(encoder_last),
                                      generated_word_embedding],
4433 4434
                               bos_id=0,
                               eos_id=1,
4435
                               beam_size=5)
4436 4437 4438 4439 4440 4441

    Please see the following demo for more details:

    - machine translation : demo/seqToseq/translation/gen.conf \
                            demo/seqToseq/seqToseq_net.py

4442 4443
    :param name: The name of the recurrent unit that is responsible for
                 generating sequences. It is optional.
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    :type name: basestring
4445
    :param step: A callable function that defines the calculation in a time
4446
                 step, and it is applied to sequences with arbitrary length by
4447 4448 4449 4450 4451
                 sharing a same set of weights.

                 You can refer to the first parameter of recurrent_group, or
                 demo/seqToseq/seqToseq_net.py for more details.
    :type step: callable
4452 4453
    :param input: Input data for the recurrent unit, which should include the
                  previously generated words as a GeneratedInput object.
4454
                  In beam_search, none of the input's type should be LayerOutput.
4455
    :type input: list
4456 4457 4458
    :param bos_id: Index of the start symbol in the dictionary. The start symbol
                   is a special token for NLP task, which indicates the
                   beginning of a sequence. In the generation task, the start
4459
                   symbol is essential, since it is used to initialize the RNN
4460 4461 4462 4463 4464 4465 4466 4467
                   internal state.
    :type bos_id: int
    :param eos_id: Index of the end symbol in the dictionary. The end symbol is
                   a special token for NLP task, which indicates the end of a
                   sequence. The generation process will stop once the end
                   symbol is generated, or a pre-defined max iteration number
                   is exceeded.
    :type eos_id: int
4468 4469
    :param max_length: Max generated sequence length.
    :type max_length: int
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    :param beam_size: Beam search for sequence generation is an iterative search
                      algorithm. To maintain tractability, every iteration only
                      only stores a predetermined number, called the beam_size,
                      of the most promising next words. The greater the beam
                      size, the fewer candidate words are pruned.
    :type beam_size: int
    :param num_results_per_sample: Number of the generated results per input
                                  sequence. This number must always be less than
                                  beam size.
    :type num_results_per_sample: int
4480 4481
    :return: The generated word index.
    :rtype: LayerOutput
4482 4483
    """

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    if num_results_per_sample is None:
        num_results_per_sample = beam_size
    if num_results_per_sample > beam_size:
        logger.warning("num_results_per_sample should be less than beam_size")

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    if isinstance(input, StaticInput) or isinstance(input, BaseGeneratedInput):
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        input = [input]

    generated_input_index = -1

    real_input = []
    for i, each_input in enumerate(input):
4496 4497 4498
        assert not isinstance(each_input, LayerOutput), (
            "in beam_search, "
            "none of the input should has a type of LayerOutput.")
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        if isinstance(each_input, BaseGeneratedInput):
4500 4501
            assert generated_input_index == -1, ("recurrent_group accepts "
                                                 "only one GeneratedInput.")
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            generated_input_index = i
4503

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        else:
            real_input.append(each_input)

4507
    assert generated_input_index != -1, "No GeneratedInput is given."
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    gipt = input[generated_input_index]

    gipt.bos_id = bos_id
    gipt.eos_id = eos_id

    def __real_step__(*args):
        eos_name = "__%s_eos_layer__" % name
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        RecurrentLayerGroupSetGenerator(
            Generator(
                eos_layer_name=eos_name,
                max_num_frames=max_length,
                beam_size=beam_size,
                num_results_per_sample=num_results_per_sample))
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        args = list(args)
        args.insert(generated_input_index, gipt.before_real_step())

        predict = gipt.after_real_step(step(*args))

4528
        eos_layer(input=predict[0], eos_id=eos_id, name=eos_name)
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        return predict

4531 4532
    return recurrent_group(
        step=__real_step__, input=real_input, reverse=False, name=name)
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4535 4536
def __cost_input__(input, label, weight=None):
    """
4537
    inputs and parents for cost layers.
4538
    """
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    if isinstance(input, LayerOutput):
        input = [input]
    if isinstance(label, LayerOutput):
        label = [label]
    ipts = [Input(ipt.name) for ipt in (input + label)]
    parents = [ipt for ipt in (input + label)]
4545
    if weight is not None:
4546
        assert weight.size == 1
4547 4548 4549
        ipts.append(Input(weight.name))
        parents.append(weight)
    return ipts, parents
4550

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@wrap_name_default()
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@layer_support()
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def square_error_cost(input,
                      label,
                      weight=None,
                      name=None,
                      coeff=1.0,
                      layer_attr=None):
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    """
4561
    sum of square error cost:
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    ..  math::

4565
        cost = \\sum_{i=1}^N(t_i-y_i)^2
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4567
    :param name: The name of this layer. It is optional.
4568
    :type name: basestring
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    :param input: The first input layer.
4570
    :type input: LayerOutput
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    :param label: The input label.
4572
    :type label: LayerOutput
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    :param weight: The weight layer defines a weight for each sample in the
                   mini-batch. It is optional.
4575
    :type weight: LayerOutput
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    :param coeff: The weight of the gradient in the back propagation.
4577
                  1.0 is the default value.
4578
    :type coeff: float
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
4583
    :rtype: LayerOutput
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    """
4585 4586
    ipts, parents = __cost_input__(input, label, weight)

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    Layer(
        inputs=ipts,
        type="square_error",
        name=name,
4591
        coeff=coeff,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(name, LayerType.COST, parents=parents, size=1)
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4596
regression_cost = square_error_cost
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@wrap_name_default("cost")
4600
@layer_support()
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def classification_cost(input,
                        label,
                        weight=None,
                        name=None,
4605
                        evaluator=classification_error_evaluator,
4606 4607
                        layer_attr=None,
                        coeff=1.):
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    """
    classification cost Layer.

4611
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The first input layer.
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    :type input: LayerOutput
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    :param label: The input label.
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    :type label: LayerOutput
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    :param weight: The weight layer defines a weight for each sample in the
                   mini-batch. It is optional.
4619
    :type weight: LayerOutput
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    :param evaluator: Evaluator method. classification_error_evaluator is the default.
    :type evaluator: Evaluator method
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
4624
    :type layer_attr: ExtraLayerAttribute
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    :param coeff: The weight of the gradient in the back propagation.
4626
                  1.0 is the default value.
4627
    :type coeff: float
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    assert input.layer_type != LayerType.DATA
    assert isinstance(input.activation, SoftmaxActivation)
    assert label.layer_type == LayerType.DATA
4634 4635 4636

    ipts, parents = __cost_input__(input, label, weight)

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    Layer(
        name=name,
        type="multi-class-cross-entropy",
        inputs=ipts,
4641
        coeff=coeff,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    def __add_evaluator__(e):
        assert callable(e)
        assert hasattr(e, 'is_evaluator')
        assert isinstance(e.is_evaluator, bool)
        assert e.is_evaluator
        assert hasattr(e, "for_classification")
        assert isinstance(e.for_classification, bool)
        assert e.for_classification

4653
        e(name=e.__name__, input=input, label=label, weight=weight)
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4655
    if not isinstance(evaluator, collections.Sequence):
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        evaluator = [evaluator]

    for each_evaluator in evaluator:
        __add_evaluator__(each_evaluator)

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    return LayerOutput(name, LayerType.COST, parents=parents, size=1)
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4663

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def conv_operator(img,
                  filter,
                  filter_size,
                  num_filters,
                  num_channels=None,
                  stride=1,
                  padding=0,
                  filter_size_y=None,
                  stride_y=None,
4673 4674
                  padding_y=None,
                  trans=False):
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    """
    Different from img_conv_layer, conv_op is an Operator, which can be used
    in mixed_layer. And conv_op takes two inputs to perform convolution.
    The first input is the image and the second is filter kernel. It only
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    supports GPU mode.
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    The example usage is:

    .. code-block:: python

4685 4686
       op = conv_operator(img=input1,
                          filter=input2,
4687
                          filter_size=3,
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                          num_filters=64,
                          num_channels=64)

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    :param img: The input image.
4692
    :type img: LayerOutput
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    :param filter: The input filter.
4694
    :type filter: LayerOutput
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    :param filter_size: The dimension of the filter kernel on the x axis.
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    :type filter_size: int
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    :param filter_size_y: The dimension of the filter kernel on the y axis.
                          If the parameter is not set or set to None, it will
                          set to 'filter_size' automatically.
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    :type filter_size_y: int
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    :param num_filters: The number of the output channels.
4702
    :type num_filters: int
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    :param num_channels: The number of the input channels. If the parameter is not set
                         or set to None, it will be automatically set to the channel
                         number of the 'img'.
4706
    :type num_channels: int
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    :param stride: The stride on the x axis.
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    :type stride: int
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    :param stride_y: The stride on the y axis. If the parameter is not set or
                     set to None, it will be set to 'stride' automatically.
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    :type stride_y: int
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    :param padding: The padding size on the x axis.
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    :type padding: int
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    :param padding_y: The padding size on the y axis. If the parameter is not set
                      or set to None, it will be set to 'padding' automatically.
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    :type padding_y: int
    :return: A ConvOperator Object.
    :rtype: ConvOperator
    """
    if filter_size_y is None:
        filter_size_y = filter_size
    if stride_y is None:
        stride_y = stride
    if padding_y is None:
        padding_y = padding
4726

4727 4728
    if num_channels is None:
        num_channels = img.num_filters
4729 4730

    assert isinstance(filter, LayerOutput)
4731
    assert filter.size is not None
4732

4733 4734 4735
    opCls = ConvTransOperator if trans else ConvOperator

    op = opCls(
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        input_layer_names=[img.name, filter.name],
        num_filters=num_filters,
        conv_conf=Conv(
            filter_size=filter_size,
            padding=padding,
            stride=stride,
            channels=num_channels,
            filter_size_y=filter_size_y,
            padding_y=padding_y,
            stride_y=stride_y,
            groups=1))
4747

4748
    op.origin = [img, filter]
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4749 4750
    return op

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4752
@wrap_param_attr_default()
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def conv_projection(input,
                    filter_size,
                    num_filters,
                    num_channels=None,
                    stride=1,
                    padding=0,
                    filter_size_y=None,
                    stride_y=None,
                    padding_y=None,
                    groups=1,
4763 4764
                    param_attr=None,
                    trans=False):
4765
    """
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    Different from img_conv_layer and conv_op, conv_projection is a Projection,
    which can be used in mixed_layer and concat_layer. It uses cudnn to implement
    convolution and only supports GPU mode.
4769 4770 4771 4772 4773

    The example usage is:

    .. code-block:: python

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       proj = conv_projection(input=input1,
4775 4776 4777 4778
                              filter_size=3,
                              num_filters=64,
                              num_channels=64)

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    :param input: The input of this layer.
4780
    :type input: LayerOutput
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    :param filter_size: The dimensions of the filter kernel. If the parameter is
                        set to one integer, the two dimensions on x and y axises
                        will be same when filter_size_y is not set. If it is set
                        to a list, the first element indicates the dimension on
                        the x axis, and the second is used to specify the dimension
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                        on the y axis when filter_size_y is not provided.
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    :type filter_size: int | tuple | list
    :param filter_size_y: The dimension of the filter kernel on the y axis. If the parameter
                          is not set, it will be set automatically according to filter_size.
4790
    :type filter_size_y: int
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4791
    :param num_filters: The number of filters.
4792
    :type num_filters: int
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4793
    :param num_channels: The number of the input channels.
4794
    :type num_channels: int
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    :param stride: The strides. If the parameter is set to one integer, the strides
                   on x and y axises will be same when stride_y is not set. If it is
                   set to a list, the first element indicates the stride on the x axis,
                   and the second is used to specify the stride on the y axis when
                   stride_y is not provided.
    :type stride: int | tuple | list
    :param stride_y: The stride on the y axis.
4802
    :type stride_y: int
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    :param padding: The padding sizes. If the parameter is set to one integer, the padding
                    sizes on x and y axises will be same when padding_y is not set. If it
                    is set to a list, the first element indicates the padding size on the
                    x axis, and the second is used to specify the padding size on the y axis
                    when padding_y is not provided.
    :type padding: int | tuple | list
    :param padding_y: The padding size on the y axis.
4810 4811 4812
    :type padding_y: int
    :param groups: The group number.
    :type groups: int
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    :param param_attr: The parameter attribute of the convolution. See ParameterAttribute for
                       details.
4815
    :type param_attr: ParameterAttribute
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    :param trans: Whether it is ConvTransProjection or ConvProjection
R
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    :type trans: bool
R
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    :return: A Projection Object.
    :rtype: ConvTransProjection | ConvProjection
4820 4821 4822 4823 4824 4825 4826 4827 4828 4829 4830 4831 4832 4833 4834 4835 4836 4837 4838 4839 4840 4841 4842 4843 4844 4845 4846 4847
    """
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters

    if filter_size_y is None:
        if isinstance(filter_size, collections.Sequence):
            assert len(filter_size) == 2
            filter_size, filter_size_y = filter_size
        else:
            filter_size_y = filter_size

    if stride_y is None:
        if isinstance(stride, collections.Sequence):
            assert len(stride) == 2
            stride, stride_y = stride
        else:
            stride_y = stride

    if padding_y is None:
        if isinstance(padding, collections.Sequence):
            assert len(padding) == 2
            padding, padding_y = padding
        else:
            padding_y = padding

    if param_attr.attr.get('initial_smart'):
        # special initial for conv layers.
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        init_w = (2.0 / (filter_size**2 * num_channels))**0.5
4849 4850 4851 4852 4853
        param_attr.attr["initial_mean"] = 0.0
        param_attr.attr["initial_std"] = init_w
        param_attr.attr["initial_strategy"] = 0
        param_attr.attr["initial_smart"] = False

4854 4855 4856
    projCls = ConvTransProjection if trans else ConvProjection

    proj = projCls(
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        input_layer_name=input.name,
        num_filters=num_filters,
        conv_conf=Conv(
            filter_size=filter_size,
            padding=padding,
            stride=stride,
            channels=num_channels,
            filter_size_y=filter_size_y,
            padding_y=padding_y,
            stride_y=stride_y,
            groups=groups),
        **param_attr.attr)
4869 4870 4871 4872

    proj.origin = input
    return proj

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@wrap_name_default("pad")
@layer_support()
def pad_layer(input,
              pad_c=None,
              pad_h=None,
              pad_w=None,
              name=None,
              layer_attr=None):
    """
    This operation pads zeros to the input data according to pad_c,pad_h
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    and pad_w. pad_c, pad_h, pad_w specify the size in the corresponding
    dimension. And the input data shape is NCHW.
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    For example, pad_c=[2,3] means padding 2 zeros before the input data
    and 3 zeros after the input data in the channel dimension. pad_h means
    padding zeros in the height dimension. pad_w means padding zeros in the
    width dimension.
4891

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    For example,
4893

4894 4895 4896 4897 4898 4899 4900 4901 4902 4903 4904 4905 4906 4907 4908 4909 4910 4911 4912 4913 4914
    .. code-block:: python

       input(2,2,2,3)  = [
                           [ [[1,2,3], [3,4,5]],
                             [[2,3,5], [1,6,7]] ],
                           [ [[4,3,1], [1,8,7]],
                             [[3,8,9], [2,3,5]] ]
                         ]

       pad_c=[1,1], pad_h=[0,0], pad_w=[0,0]

       output(2,4,2,3) = [
                           [ [[0,0,0], [0,0,0]],
                             [[1,2,3], [3,4,5]],
                             [[2,3,5], [1,6,7]],
                             [[0,0,0], [0,0,0]] ],
                           [ [[0,0,0], [0,0,0]],
                             [[4,3,1], [1,8,7]],
                             [[3,8,9], [2,3,5]],
                             [[0,0,0], [0,0,0]] ]
                         ]
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    The simply usage is:
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    .. code-block:: python

       pad = pad_layer(input=ipt,
                       pad_c=[4,4],
                       pad_h=[0,0],
                       pad_w=[2,2])

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param pad_c: The padding size in the channel dimension.
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    :type pad_c: list | None
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    :param pad_h: The padding size in the height dimension.
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    :type pad_h: list | None
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    :param pad_w: The padding size in the width dimension.
R
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    :type pad_w: list | None
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
4936
    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    if pad_c is not None:
        assert isinstance(pad_c, collections.Sequence) and len(pad_c) == 2
    else:
        pad_c = [0, 0]

    if pad_h is not None:
        assert isinstance(pad_h, collections.Sequence) and len(pad_h) == 2
    else:
        pad_h = [0, 0]

    if pad_w is not None:
        assert isinstance(pad_w, collections.Sequence) and len(pad_w) == 2
    else:
        pad_w = [0, 0]

    assert input.num_filters is not None
    in_ch = input.num_filters
    out_ch = in_ch + pad_c[0] + pad_c[1]

    l = Layer(
        name=name,
        type=LayerType.PAD_LAYER,
        inputs=Input(
            input.name,
            pad=Pad(
                channels=in_ch,
                pad_c=pad_c,
                pad_h=pad_h,
                pad_w=pad_w, )),
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        layer_type=LayerType.PAD_LAYER,
        parents=[input],
        num_filters=out_ch,
        size=l.config.size)


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@wrap_name_default()
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@layer_support()
def conv_shift_layer(a, b, name=None, layer_attr=None):
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    """
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    This layer performs cyclic convolution on two inputs. For example:
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      - a[in]: contains M elements.
      - b[in]: contains N elements (N should be odd).
      - c[out]: contains M elements.

    .. math::

        c[i] = \sum_{j=-(N-1)/2}^{(N-1)/2}a_{i+j} * b_{j}

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    In this formula:
4993 4994 4995 4996
     - a's index is computed modulo M. When it is negative, then get item from
       the right side (which is the end of array) to the left.
     - b's index is computed modulo N. When it is negative, then get item from
       the right size (which is the end of array) to the left.
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    The example usage is:

    .. code-block:: python

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       conv_shift = conv_shift_layer(a=layer1, b=layer2)
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5004
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param a: The first input of this layer.
5007
    :type a: LayerOutput
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    :param b: The second input of this layer.
5009
    :type b: LayerOutput
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
5016 5017
    assert isinstance(a, LayerOutput) and isinstance(b, LayerOutput)
    assert b.size is None or b.size % 2 == 1  # size of b must be odd.
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    Layer(
        name=name,
        type=LayerType.CONV_SHIFT_LAYER,
5021
        inputs=[a.name, b.name],
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(
        name, LayerType.CONV_SHIFT_LAYER, parents=[a, b], size=a.size)
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@wrap_name_default()
@wrap_param_attr_default()
@wrap_bias_attr_default()
5031
@wrap_act_default(act=LinearActivation())
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@layer_support(ERROR_CLIPPING, DROPOUT)
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def tensor_layer(a,
                 b,
                 size,
                 act=None,
                 name=None,
                 param_attr=None,
                 bias_attr=None,
                 layer_attr=None):
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    """
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    This layer performs tensor operation on two inputs.
    For example:
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    .. math::
5046
       y_{i} = a * W_{i} * {b^\mathrm{T}}, i=0,1,...,K-1
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    In this formular:
5049 5050
      - :math:`a`: the first input contains M elements.
      - :math:`b`: the second input contains N elements.
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      - :math:`y_{i}`: the i-th element of y.
      - :math:`W_{i}`: the i-th learned weight, shape if [M, N]
5053
      - :math:`b^\mathrm{T}`: the transpose of :math:`b_{2}`.
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    The simple usage is:

    .. code-block:: python

5059
       tensor = tensor_layer(a=layer1, b=layer2, size=1000)
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5061
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param a: The first input of this layer.
5064
    :type a: LayerOutput
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    :param b: The second input of this layer.
5066
    :type b: LayerOutput
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    :param size: The dimension of this layer.
    :type size: int
5069
    :param act: Activation type. LinearActivation is the default activation.
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    :type act: BaseActivation
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    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
5073
    :type param_attr: ParameterAttribute
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    :param bias_attr: The parameter attribute for bias. If this parameter is set to
                      False or an object whose type is not ParameterAttribute,
                      no bias is defined. If this parameter is set to True,
                      the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
5085
    assert isinstance(a, LayerOutput) and isinstance(b, LayerOutput)
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    Layer(
        name=name,
        size=size,
        type=LayerType.TENSOR_LAYER,
        active_type=act.name,
        bias=ParamAttr.to_bias(bias_attr),
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        inputs=[Input(a.name, **param_attr.attr), Input(b.name)],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.TENSOR_LAYER, parents=[a, b], activation=act, size=size)
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@wrap_name_default()
@wrap_param_attr_default()
@wrap_bias_attr_default()
@wrap_act_default()
5102
@layer_support(DROPOUT, ERROR_CLIPPING)
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def selective_fc_layer(input,
                       size,
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                       select=None,
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                       act=None,
                       name=None,
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                       pass_generation=False,
                       has_selected_colums=True,
                       mul_ratio=0.02,
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                       param_attr=None,
                       bias_attr=None,
                       layer_attr=None):
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    """
    Selectived fully connected layer. Different from fc_layer, the output
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    of this layer can be sparse. It requires an additional input to indicate
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    several selected columns for output. If the selected columns is not
    specified, selective_fc_layer acts exactly like fc_layer.

    The simple usage is:

    .. code-block:: python

5124
       sel_fc = selective_fc_layer(input=input, size=128, act=TanhActivation())
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5126
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
    :type input: LayerOutput | list | tuple
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    :param select: The layer to select columns to output. It should be a sparse
                   binary matrix, and is treated as the mask of selective fc. If
                   it is not set or set to None, selective_fc_layer acts exactly
                   like fc_layer.
5134
    :type select: LayerOutput
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    :param size: The dimension of this layer, which should be equal to that of
                 the layer 'select'.
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    :type size: int
5138
    :param act: Activation type. TanhActivation is the default activation.
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    :type act: BaseActivation
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    :param pass_generation: The flag which indicates whether it is during generation.
    :type pass_generation: bool
    :param has_selected_colums: The flag which indicates whether the parameter 'select'
                                has been set. True is the default.
    :type has_selected_colums: bool
    :param mul_ratio: A ratio helps to judge how sparse the output is and determine
                      the computation method for speed consideration.
    :type mul_ratio: float
    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
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    :type param_attr: ParameterAttribute
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    :param bias_attr: The parameter attribute for bias. If this parameter is set to
                      False or an object whose type is not ParameterAttribute,
                      no bias is defined. If this parameter is set to True,
                      the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    if isinstance(input, LayerOutput):
        input = [input]
5164
        assert not isinstance(param_attr, collections.Sequence)
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        param_attr = [param_attr]
    else:
5167
        if isinstance(param_attr, collections.Sequence):
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            assert len(input) == len(param_attr)
        else:
5170
            if "parameter_name" in param_attr.attr and len(input) > 1:
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                logger.fatal(
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                    "When the name field of param_attr is manually specified "
                    "and the input is a list, the param_attr should also be a "
                    "list with each item being the param_attr for each input "
                    "item. If only one named param_attr is provided, all the "
                    "input items would share this parameter.")
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            param_attr = [copy.deepcopy(param_attr) for _ in range(len(input))]

5179 5180 5181 5182
    assert isinstance(input, collections.Sequence)
    assert isinstance(select, LayerOutput)
    if select.size is not None:
        assert select.size == size
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    Layer(
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        inputs=[
            Input(ipt.name, **attr.attr) for ipt, attr in zip(input, param_attr)
        ] + [select.name],
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        name=name,
        type=LayerType.SEL_FC_LAYER,
        size=size,
5190
        bias=ParameterAttribute.to_bias(bias_attr),
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        active_type=act.name,
        selective_fc_pass_generation=pass_generation,
        has_selected_colums=has_selected_colums,
        selective_fc_full_mul_ratio=mul_ratio,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.SEL_FC_LAYER,
        list(input) + [select],
        activation=act,
        size=size)
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@wrap_name_default()
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@layer_support()
def sampling_id_layer(input, name=None, layer_attr=None):
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    """
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    A layer for sampling id from a multinomial distribution from the input layer.
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    Sampling one id for one sample.

    The simple usage is:

    .. code-block:: python

       samping_id = sampling_id_layer(input=input)

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    :param input: The input of this layer.
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    :type input: LayerOutput
5219
    :param name: The name of this layer. It is optional.
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    :type name: basestring
R
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
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    l = Layer(
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        name=name,
        type=LayerType.SAMPLING_ID_LAYER,
        inputs=[Input(input.name)],
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.SAMPLING_ID_LAYER, input, size=l.config.size)
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@wrap_name_default()
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@layer_support()
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def slope_intercept_layer(input,
                          name=None,
                          slope=1.0,
                          intercept=0.0,
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                          layer_attr=None):
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5243
    """
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    This layer for applying a slope and an intercept to the input.
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5245 5246 5247 5248 5249 5250 5251 5252 5253 5254

    ..  math::
        y = slope * x + intercept

    The simple usage is:

    .. code-block:: python

       scale = slope_intercept_layer(input=input, slope=-1.0, intercept=1.0)

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    :param input: The input of this layer.
Z
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    :type input: LayerOutput
5257
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param slope: The scale factor.
    :type slope: float
    :param intercept: The offset.
    :type intercept: float
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
    Layer(
        name=name,
        type=LayerType.SLOPE_INTERCEPT_LAYER,
        slope=slope,
        intercept=intercept,
        inputs=[Input(input.name)],
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.SLOPE_INTERCEPT_LAYER, input, size=input.size)
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@wrap_name_default()
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@layer_support()
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def linear_comb_layer(weights, vectors, size=None, name=None, layer_attr=None):
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    """
5284 5285 5286 5287
    A layer for weighted sum of vectors takes two inputs.
      - Input: size of weights is M
               size of vectors is M*N
      - Output: a vector of size=N
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    .. math::

5291
       z(i) = \sum_{j=0}^{M-1} x(j) y(i+Nj)
5292

5293 5294 5295 5296 5297
    where :math:`0 \le i \le N-1`

    Or in the matrix notation:

    .. math::
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5299
       z = x^\mathrm{T} Y
Z
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    In this formular:
5302 5303 5304 5305 5306 5307
      - :math:`x`: weights
      - :math:`y`: vectors.
      - :math:`z`: the output.

    Note that the above computation is for one sample. Multiple samples are
    processed in one batch.
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    The simple usage is:

    .. code-block:: python

5313
       linear_comb = linear_comb_layer(weights=weight, vectors=vectors,
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                                       size=elem_dim)

5316 5317 5318 5319
    :param weights: The weight layer.
    :type weights: LayerOutput
    :param vectors: The vector layer.
    :type vectors: LayerOutput
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    :param size: The dimension of this layer.
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    :type size: int
5322
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
5330 5331 5332 5333
    assert isinstance(weights, LayerOutput) and isinstance(vectors, LayerOutput)
    if vectors.size is not None and weights.size is not None:
        assert vectors.size % weights.size == 0
        if size is None:
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            size = vectors.size / weights.size
5335 5336
        else:
            assert size == vectors.size / weights.size
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    Layer(
        name=name,
5339
        type=LayerType.LINEAR_COMBINATION_LAYER,
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        size=size,
5341
        inputs=[Input(weights.name), Input(vectors.name)],
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.LINEAR_COMBINATION_LAYER, [weights, vectors], size=size)
5345

5346

5347
convex_comb_layer = linear_comb_layer
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5348

5349

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5350
@wrap_name_default()
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@layer_support()
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def block_expand_layer(input,
                       block_x=0,
                       block_y=0,
                       stride_x=0,
                       stride_y=0,
                       padding_x=0,
                       padding_y=0,
5359
                       num_channels=None,
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                       name=None,
                       layer_attr=None):
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    """
    Expand feature map to minibatch matrix.
5364
       - matrix width is: block_y * block_x * num_channels
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       - matirx height is: outputH * outputW
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5366 5367 5368 5369 5370 5371 5372

    .. math::

       outputH = 1 + (2 * padding_y + imgSizeH - block_y + stride_y - 1) / stride_y

       outputW = 1 + (2 * padding_x + imgSizeW - block_x + stride_x - 1) / stride_x

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    The expanding method is the same with ExpandConvLayer, but saved the transposed
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    value. After expanding, output.sequenceStartPositions will store timeline.
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    The number of time steps is outputH * outputW and the dimension of each
5376
    time step is block_y * block_x * num_channels. This layer can be used after
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    convolutional neural network, and before recurrent neural network.
Z
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5379 5380 5381 5382
    The simple usage is:

    .. code-block:: python

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       block_expand = block_expand_layer(input=layer,
5384
                                         num_channels=128,
5385 5386 5387 5388 5389
                                         stride_x=1,
                                         stride_y=1,
                                         block_x=1,
                                         block_x=3)

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    :param input: The input of this layer.
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    :type input: LayerOutput
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
    :type num_channels: int
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    :param block_x: The width of sub block.
    :type block_x: int
    :param block_y: The width of sub block.
    :type block_y: int
    :param stride_x: The stride size in horizontal direction.
    :type stride_x: int
    :param stride_y: The stride size in vertical direction.
    :type stride_y: int
    :param padding_x: The padding size in horizontal direction.
    :type padding_x: int
    :param padding_y: The padding size in vertical direction.
    :type padding_y: int
5408
    :param name: The name of this layer. It is optional.
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    :type name: basestring.
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """
5416 5417 5418
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters
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    l = Layer(
        name=name,
        inputs=Input(
            input.name,
            block_expand=BlockExpand(
                channels=num_channels,
                block_x=block_x,
                block_y=block_y,
                stride_x=stride_x,
                stride_y=stride_y,
                padding_x=padding_x,
                padding_y=padding_y)),
        type=LayerType.BLOCK_EXPAND,
        **ExtraLayerAttribute.to_kwargs(layer_attr))

    return LayerOutput(
        name, LayerType.BLOCK_EXPAND, parents=[input], size=l.config.size)
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5436 5437


5438 5439
@wrap_name_default()
@layer_support()
5440
def maxout_layer(input, groups, num_channels=None, name=None, layer_attr=None):
5441
    """
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    A layer to do max out on convolutional layer output.
      - Input: the output of a convolutional layer.
      - Output: feature map size same as the input's, and its channel number is
        (input channel) / groups.
5446

5447
    So groups should be larger than 1, and the num of channels should be able
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    to be devided by groups.

    Reference:
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        `Maxout Networks
R
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        <http://www.jmlr.org/proceedings/papers/v28/goodfellow13.pdf>`_
R
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        `Multi-digit Number Recognition from Street View Imagery using Deep Convolutional Neural Networks
R
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        <https://arxiv.org/pdf/1312.6082v4.pdf>`_
5455

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    .. math::
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5458

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       & out = \max_k (in[n, k, o_c , s])
C
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5460

C
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       & out_{i * s + j} = \max_k in_{  k * o_{c} * s + i * s + j}
C
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5462

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       & s = \\frac{input.size}{ num\_channels}
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5464

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       & o_{c} = \\frac{num\_channels}{groups}
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5466

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       & 0 \le i < o_{c}
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5468

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       & 0 \le j < s
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5470

C
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       & 0 \le k < groups
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5472

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5474 5475 5476 5477 5478 5479 5480 5481
    The simple usage is:

    .. code-block:: python

       maxout = maxout_layer(input,
                             num_channels=128,
                             groups=4)

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    :param input: The input of this layer.
5483
    :type input: LayerOutput
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    :param num_channels: The number of input channels. If the parameter is not set or
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
    :type num_channels: int
5488 5489
    :param groups: The group number of input layer.
    :type groups: int
5490
    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
5494 5495 5496 5497 5498 5499 5500 5501 5502 5503
    :type layer_attr: ExtraLayerAttribute
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input.activation, LinearActivation)
    assert groups > 1
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters
    assert num_channels % groups == 0
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    l = Layer(
        name=name,
        inputs=Input(
            input.name, maxout=MaxOut(
                channels=num_channels, groups=groups)),
        type=LayerType.MAXOUT,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.MAXOUT, parents=[input], size=l.config.size)
5513 5514


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5515
@wrap_name_default()
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@layer_support()
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def ctc_layer(input,
              label,
              size=None,
              name=None,
              norm_by_times=False,
L
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              layer_attr=None):
Z
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5523 5524
    """
    Connectionist Temporal Classification (CTC) is designed for temporal
R
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    classication task. e.g. sequence labeling problems where the
Z
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5526 5527
    alignment between the inputs and the target labels is unknown.

R
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5528
    Reference:
R
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5529
        `Connectionist Temporal Classification: Labelling Unsegmented Sequence Data
R
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5530
        with Recurrent Neural Networks
R
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5531
        <http://machinelearning.wustl.edu/mlpapers/paper_files/icml2006_GravesFGS06.pdf>`_
5532 5533

    Note:
R
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5534 5535 5536 5537 5538
        Considering the 'blank' label needed by CTC, you need to use (num_classes + 1)
        as the size of the input, where num_classes is the category number.
        And the 'blank' is the last category index. So the size of 'input' layer (e.g.
        fc_layer with softmax activation) should be (num_classes + 1). The size of
        ctc_layer should also be (num_classes + 1).
5539

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5540
    The example usage is:
Z
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5541 5542 5543 5544 5545 5546 5547 5548

    .. code-block:: python

      ctc = ctc_layer(input=input,
                      label=label,
                      size=9055,
                      norm_by_times=True)

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    :param input: The input of this layer.
Z
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5550
    :type input: LayerOutput
R
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5551
    :param label: The input label.
Z
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5552
    :type label: LayerOutput
R
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5553
    :param size: The dimension of this layer, which must be equal to (category number + 1).
Z
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5554
    :type size: int
5555
    :param name: The name of this layer. It is optional.
R
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5556 5557
    :type name: basestring
    :param norm_by_times: Whether to do normalization by times. False is the default.
Z
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5558
    :type norm_by_times: bool
R
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5559 5560 5561
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
D
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5562
    :return: LayerOutput object.
Z
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5563 5564 5565 5566
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
    assert isinstance(label, LayerOutput)
5567 5568 5569 5570 5571
    if label.size is not None:
        if size is not None:
            assert size == label.size + 1
        else:
            size = label.size + 1
Z
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5572
    Layer(
5573 5574 5575 5576
        name=name,
        type=LayerType.CTC_LAYER,
        size=size,
        norm_by_times=norm_by_times,
L
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5577
        inputs=[input.name, label.name],
Q
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5578
        **ExtraLayerAttribute.to_kwargs(layer_attr))
Z
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5579 5580
    return LayerOutput(name, LayerType.CTC_LAYER, [input, label], size=size)

5581

5582 5583 5584 5585 5586 5587 5588 5589 5590 5591 5592
@wrap_name_default()
@layer_support()
def warp_ctc_layer(input,
                   label,
                   size=None,
                   name=None,
                   blank=0,
                   norm_by_times=False,
                   layer_attr=None):
    """
    A layer intergrating the open-source `warp-ctc
L
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5593
    <https://github.com/baidu-research/warp-ctc>`_ library, which is used in
5594
    `Deep Speech 2: End-toEnd Speech Recognition in English and Mandarin
L
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5595 5596 5597 5598 5599 5600 5601
    <https://arxiv.org/pdf/1512.02595v1.pdf>`_, to compute Connectionist Temporal
    Classification (CTC) loss. Besides, another `warp-ctc
    <https://github.com/gangliao/warp-ctc>`_ repository, which is forked from
    the official one, is maintained to enable more compiling options. During the
    building process, PaddlePaddle will clone the source codes, build and
    install it to :code:`third_party/install/warpctc` directory.

R
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5602
    Reference:
R
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5603
        `Connectionist Temporal Classification: Labelling Unsegmented Sequence Data
R
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5604
        with Recurrent Neural Networks
R
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5605
        <http://machinelearning.wustl.edu/mlpapers/paper_files/icml2006_GravesFGS06.pdf>`_
5606 5607

    Note:
R
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5608 5609 5610
        - Let num_classes represents the category number. Considering the 'blank'
          label needed by CTC, you need to use (num_classes + 1) as the size of
          warp_ctc layer.
5611
        - You can set 'blank' to any value ranged in [0, num_classes], which
R
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5612
          should be consistent with those used in your labels.
5613
        - As a native 'softmax' activation is interated to the warp-ctc library,
R
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5614
          'linear' activation is expected to be used instead in the 'input' layer.
5615

C
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5616
    The example usage is:
5617 5618 5619 5620 5621 5622 5623 5624 5625

    .. code-block:: python

      ctc = warp_ctc_layer(input=input,
                           label=label,
                           size=1001,
                           blank=1000,
                           norm_by_times=False)

R
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5626
    :param input: The input of this layer.
5627
    :type input: LayerOutput
R
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5628
    :param label: The input label.
5629
    :type label: LayerOutput
R
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5630
    :param size: The dimension of this layer, which must be equal to (category number + 1).
5631
    :type size: int
5632
    :param name: The name of this layer. It is optional.
R
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5633 5634
    :type name: basestring
    :param blank: The 'blank' label used in ctc.
5635
    :type blank: int
R
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5636
    :param norm_by_times: Whether to do normalization by times. False is the default.
5637
    :type norm_by_times: bool
R
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5638 5639 5640
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
5641 5642 5643 5644 5645 5646 5647 5648 5649 5650 5651 5652 5653 5654 5655 5656 5657 5658 5659 5660 5661 5662
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
    assert isinstance(label, LayerOutput)
    if label.size is not None:
        if size is not None:
            assert size == label.size + 1
        else:
            size = label.size + 1
    Layer(
        name=name,
        type=LayerType.WARP_CTC_LAYER,
        size=size,
        blank=blank,
        norm_by_times=norm_by_times,
        inputs=[input.name, label.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.WARP_CTC_LAYER, parents=[input, label], size=size)


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5663
@wrap_name_default()
5664
@wrap_param_attr_default()
L
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5665
@layer_support()
Q
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5666 5667 5668 5669 5670 5671
def crf_layer(input,
              label,
              size=None,
              weight=None,
              param_attr=None,
              name=None,
5672
              coeff=1.0,
L
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5673
              layer_attr=None):
Z
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5674 5675 5676 5677
    """
    A layer for calculating the cost of sequential conditional random
    field model.

C
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5678
    The example usage is:
Z
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5679 5680 5681 5682 5683 5684 5685

    .. code-block:: python

      crf = crf_layer(input=input,
                      label=label,
                      size=label_dim)

R
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5686
    :param input: The first input layer.
Z
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5687
    :type input: LayerOutput
R
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5688
    :param label: The input label.
5689
    :type label: LayerOutput
Z
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5690 5691
    :param size: The category number.
    :type size: int
R
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5692 5693
    :param weight: The weight layer defines a weight for each sample in the
                   mini-batch. It is optional.
Z
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5694
    :type weight: LayerOutput
R
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5695 5696
    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
Z
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5697
    :type param_attr: ParameterAttribute
R
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5698
    :param name: The name of this layer. It is optional.
R
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5699 5700
    :type name: basestring
    :param coeff: The weight of the gradient in the back propagation.
5701
                  1.0 is the default value.
5702
    :type coeff: float
R
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5703 5704 5705
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
D
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5706
    :return: LayerOutput object.
Z
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5707 5708 5709 5710 5711
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
    assert isinstance(label, LayerOutput)
    assert weight is None or isinstance(weight, LayerOutput)
5712 5713 5714 5715 5716 5717
    if input.size is not None and label.size is not None:
        assert input.size == label.size
        if size is None:
            size = input.size
        else:
            assert size == input.size
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5718

Q
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5719
    ipts = [Input(input.name, **param_attr.attr), Input(label.name)]
Z
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5720 5721 5722 5723
    if weight is not None:
        ipts.append(Input(weight.name))

    Layer(
5724 5725 5726 5727
        name=name,
        type=LayerType.CRF_LAYER,
        size=size,
        inputs=ipts,
5728
        coeff=coeff,
Q
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5729
        **ExtraLayerAttribute.to_kwargs(layer_attr))
Z
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5730 5731 5732
    parents = [input, label]
    if weight is not None:
        parents.append(weight)
X
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5733 5734 5735 5736
    # The size for LayerOutput means the dimension of the output.
    # It's different from the meaning of crf layer, which is the number of
    # classes.
    return LayerOutput(name, LayerType.CRF_LAYER, parents, size=1)
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5737

5738

Z
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5739
@wrap_name_default()
5740
@wrap_param_attr_default()
L
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5741
@layer_support()
Q
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5742 5743 5744 5745 5746
def crf_decoding_layer(input,
                       size,
                       label=None,
                       param_attr=None,
                       name=None,
L
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5747
                       layer_attr=None):
Z
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5748 5749 5750
    """
    A layer for calculating the decoding sequence of sequential conditional
    random field model. The decoding sequence is stored in output.ids.
R
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5751 5752 5753
    If the input 'label' is provided, it is treated as the ground-truth label, and
    this layer will also calculate error. output.value[i] is 1 for an incorrect
    decoding and 0 for the correct.
Z
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5754

C
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5755
    The example usage is:
L
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5756 5757 5758 5759 5760 5761

    .. code-block:: python

      crf_decoding = crf_decoding_layer(input=input,
                                        size=label_dim)

Z
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5762 5763
    :param input: The first input layer.
    :type input: LayerOutput
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    :param size: The dimension of this layer.
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5765
    :type size: int
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5766 5767 5768 5769
    :param label: The input label.
    :type label: LayerOutput | None
    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
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5770
    :type param_attr: ParameterAttribute
R
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5771
    :param name: The name of this layer. It is optional.
R
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5772 5773 5774 5775
    :type name: basestring
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
    :type layer_attr: ExtraLayerAttribute
D
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5776
    :return: LayerOutput object.
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5777 5778 5779 5780 5781 5782
    :rtype: LayerOutput
    """

    assert isinstance(input, LayerOutput)
    assert label is None or isinstance(label, LayerOutput)

5783
    ipts = [Input(input.name, **param_attr.attr)]
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5784 5785 5786 5787
    if label is not None:
        ipts.append(Input(label.name))

    Layer(
5788 5789 5790 5791
        name=name,
        type=LayerType.CRF_DECODING_LAYER,
        size=size,
        inputs=ipts,
Q
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5792
        **ExtraLayerAttribute.to_kwargs(layer_attr))
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5793 5794 5795
    parents = [input]
    if label is not None:
        parents.append(label)
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    # The size for LayerOutput means the dimension of the output.
    # It's different from the meaning of crf layer, which is the number of
    # classes.
    return LayerOutput(name, LayerType.CRF_DECODING_LAYER, parents, size=1)
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5800

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5801

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"""
Following are cost Layers.
"""


5807
@wrap_bias_attr_default(has_bias=True)
5808
@wrap_param_attr_default()
5809 5810
@wrap_name_default()
@layer_support()
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def nce_layer(input,
              label,
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5813
              num_classes=None,
5814
              param_attr=None,
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5815 5816 5817 5818 5819 5820
              weight=None,
              num_neg_samples=10,
              neg_distribution=None,
              name=None,
              bias_attr=None,
              layer_attr=None):
5821 5822
    """
    Noise-contrastive estimation.
C
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5823 5824

    Reference:
R
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5825
        `A fast and simple algorithm for training neural probabilistic language
R
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5826
        models. <https://www.cs.toronto.edu/~amnih/papers/ncelm.pdf>`_
5827 5828 5829 5830 5831

    The example usage is:

    .. code-block:: python

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       cost = nce_layer(input=[layer1, layer2], label=layer2,
                        param_attr=[attr1, attr2], weight=layer3,
5834 5835
                        num_classes=3, neg_distribution=[0.1,0.3,0.6])

5836
    :param name: The name of this layer. It is optional.
5837
    :type name: basestring
R
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5838
    :param input: The first input of this layer.
R
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5839
    :type input: LayerOutput | list | tuple | collections.Sequence
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5840
    :param label: The input label.
5841
    :type label: LayerOutput
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5842
    :param weight: The weight layer defines a weight for each sample in the
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                   mini-batch. It is optional.
5844
    :type weight: LayerOutput
R
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5845
    :param num_classes: The number of classes.
5846
    :type num_classes: int
5847
    :param act: Activation type. SigmoidActivation is the default activation.
Y
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    :type act: BaseActivation
R
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    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
5851
    :type param_attr: ParameterAttribute
5852 5853
    :param num_neg_samples: The number of sampled negative labels. 10 is the
                            default value.
5854
    :type num_neg_samples: int
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    :param neg_distribution: The discrete noisy distribution over the output
                             space from which num_neg_samples negative labels
                             are sampled. If this parameter is not set, a
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5858
                             uniform distribution will be used. A user-defined
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                             distribution is a list whose length must be equal
                             to the num_classes. Each member of the list defines
                             the probability of a class given input x.
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    :type neg_distribution: list | tuple | collections.Sequence | None
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    :param bias_attr: The parameter attribute for bias. If this parameter is set to
                      False or an object whose type is not ParameterAttribute,
                      no bias is defined. If this parameter is set to True,
                      the bias is initialized to zero.
R
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
5870
    :type layer_attr: ExtraLayerAttribute
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5871
    :return: LayerOutput object.
5872 5873 5874 5875
    :rtype: LayerOutput
    """
    if isinstance(input, LayerOutput):
        input = [input]
5876 5877 5878 5879 5880 5881 5882 5883
        assert not isinstance(param_attr, collections.Sequence)
        param_attr = [param_attr]
    else:
        if isinstance(param_attr, collections.Sequence):
            assert len(input) == len(param_attr)
        else:
            param_attr = [copy.deepcopy(param_attr) for _ in range(len(input))]

5884
    assert isinstance(input, collections.Sequence)
5885

5886 5887
    assert isinstance(label, LayerOutput)
    assert label.layer_type == LayerType.DATA
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    if num_classes is None:
        num_classes = label.size
5890 5891 5892
    if neg_distribution is not None:
        assert isinstance(neg_distribution, collections.Sequence)
        assert len(neg_distribution) == num_classes
5893
        assert abs(sum(neg_distribution) - 1.0) < 1e-5
5894

5895 5896
    ipts_for_layer = []
    parents = []
5897
    for each_input, attr in zip(input, param_attr):
5898
        assert isinstance(each_input, LayerOutput)
5899
        ipts_for_layer.append(Input(each_input.name, **attr.attr))
5900 5901 5902 5903 5904 5905 5906 5907 5908 5909
        parents.append(each_input)
    ipts_for_layer.append(label.name)
    parents.append(label)

    if weight is not None:
        assert isinstance(weight, LayerOutput)
        assert weight.layer_type == LayerType.DATA
        ipts_for_layer.append(weight.name)
        parents.append(weight)

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    l = Layer(
5911 5912 5913 5914
        name=name,
        type=LayerType.NCE_LAYER,
        num_classes=num_classes,
        neg_sampling_dist=neg_distribution,
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        active_type=SigmoidActivation().name,
5916 5917 5918
        num_neg_samples=num_neg_samples,
        inputs=ipts_for_layer,
        bias=ParamAttr.to_bias(bias_attr),
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
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5921 5922 5923 5924
        name,
        LayerType.NCE_LAYER,
        parents=parents,
        size=l.config.size,
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        activation=SigmoidActivation())
5926 5927


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5928
@wrap_name_default()
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@layer_support()
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5930 5931 5932 5933 5934 5935 5936
def rank_cost(left,
              right,
              label,
              weight=None,
              name=None,
              coeff=1.0,
              layer_attr=None):
Z
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5937
    """
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5938 5939 5940
    A cost Layer for learning to rank using gradient descent.

    Reference:
R
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5941
        `Learning to Rank using Gradient Descent
R
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5942
        <http://research.microsoft.com/en-us/um/people/cburges/papers/ICML_ranking.pdf>`_
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    .. math::

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5946
       C_{i,j} & = -\\tilde{P_{ij}} * o_{i,j} + log(1 + e^{o_{i,j}})
Z
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5947

L
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       o_{i,j} & =  o_i - o_j
Z
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5949

L
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       \\tilde{P_{i,j}} & = \\{0, 0.5, 1\\} \ or \ \\{0, 1\\}
Z
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5951 5952 5953 5954 5955 5956 5957 5958

    In this formula:
      - :math:`C_{i,j}` is the cross entropy cost.
      - :math:`\\tilde{P_{i,j}}` is the label. 1 means positive order
        and 0 means reverse order.
      - :math:`o_i` and :math:`o_j`: the left output and right output.
        Their dimension is one.

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    The example usage is:
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5960 5961 5962 5963 5964 5965 5966 5967 5968 5969 5970 5971 5972

    .. code-block:: python

      cost = rank_cost(left=out_left,
                       right=out_right,
                       label=label)

    :param left: The first input, the size of this layer is 1.
    :type left: LayerOutput
    :param right: The right input, the size of this layer is 1.
    :type right: LayerOutput
    :param label: Label is 1 or 0, means positive order and reverse order.
    :type label: LayerOutput
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    :param weight: The weight layer defines a weight for each sample in the
                   mini-batch. It is optional.
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    :type weight: LayerOutput
R
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    :param name: The name of this layer. It is optional.
R
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5977 5978
    :type name: basestring
    :param coeff: The weight of the gradient in the back propagation.
5979
                  1.0 is the default value.
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    :type coeff: float
R
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5981 5982
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
D
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5984
    :return: LayerOutput object.
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5985 5986 5987 5988 5989 5990 5991 5992 5993 5994 5995 5996
    :rtype: LayerOutput
    """
    assert left.size == 1
    assert right.size == 1
    assert label.size == 1

    ipts = [left.name, right.name, label.name]
    parents = [left, right, label]
    if weight is not None:
        ipts.append(weight.name)
        parents.append(weight)

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5997 5998 5999 6000 6001 6002
    Layer(
        name=name,
        type=LayerType.RANK_COST,
        inputs=ipts,
        coeff=coeff,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
Z
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X
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6004
    return LayerOutput(name, LayerType.RANK_COST, parents=parents, size=1)
Z
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6005

6006

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6007
@wrap_name_default()
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6008
@layer_support()
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6009 6010 6011 6012 6013 6014
def lambda_cost(input,
                score,
                name,
                NDCG_num=5,
                max_sort_size=-1,
                layer_attr=None):
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6015 6016 6017
    """
    lambdaCost for lambdaRank LTR approach.

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6018
    The example usage is:
Z
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6019 6020 6021 6022 6023 6024 6025 6026

    .. code-block:: python

      cost = lambda_cost(input=input,
                         score=score,
                         NDCG_num=8,
                         max_sort_size=-1)

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6027 6028
    :param input: The first input of this layer, which is often a document
                  samples list of the same query and whose type must be sequence.
Z
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6029
    :type input: LayerOutput
R
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6030
    :param score: The scores of the samples.
Z
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6031 6032
    :type input: LayerOutput
    :param NDCG_num: The size of NDCG (Normalized Discounted Cumulative Gain),
R
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6033
                     e.g., 5 for NDCG@5. It must be less than or equal to the
R
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6034
                     minimum size of the list.
Z
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6035
    :type NDCG_num: int
R
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6036 6037 6038 6039 6040
    :param max_sort_size: The size of partial sorting in calculating gradient. If
                          max_sort_size is equal to -1 or greater than the number
                          of the samples in the list, then the algorithm will sort
                          the entire list to compute the gradient. In other cases,
                          max_sort_size must be greater than or equal to NDCG_num.
Z
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6041
    :type max_sort_size: int
R
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6042
    :param name: The name of this layer. It is optional.
R
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6043 6044 6045
    :type name: basestring
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
L
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    :type layer_attr: ExtraLayerAttribute
D
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6047
    :return: LayerOutput object.
Z
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6048 6049
    :rtype: LayerOutput
    """
6050 6051 6052
    assert isinstance(input, LayerOutput) and isinstance(score, LayerOutput)
    if score.size is not None:
        assert score.size == 1
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6053 6054 6055 6056 6057 6058 6059
    Layer(
        name=name,
        type=LayerType.LAMBDA_COST,
        inputs=[input.name, score.name],
        NDCG_num=NDCG_num,
        max_sort_size=max_sort_size,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
Z
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6060

Q
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6061 6062
    return LayerOutput(
        name, LayerType.LAMBDA_COST, parents=[input, score], size=1)
Z
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6063

6064

Z
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6065
@wrap_name_default()
L
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6066
@layer_support()
6067 6068 6069 6070 6071 6072
def cross_entropy(input,
                  label,
                  name=None,
                  coeff=1.0,
                  weight=None,
                  layer_attr=None):
Z
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6073 6074 6075
    """
    A loss layer for multi class entropy.

C
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6076 6077
    The example usage is:

Z
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6078 6079
    .. code-block:: python

X
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6080
       cost = cross_entropy(input=input_layer,
L
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6081
                            label=label_layer)
Z
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6082 6083 6084 6085

    :param input: The first input layer.
    :type input: LayerOutput.
    :param label: The input label.
R
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6086
    :type input: LayerOutput
R
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6087
    :param name: The name of this layer. It is optional.
R
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6088 6089
    :type name: basestring
    :param coeff: The weight of the gradient in the back propagation.
6090
                  1.0 is the default value.
R
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6091
    :type coeff: float
R
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6092 6093
    :param weight: The weight layer defines a weight for each sample in the
                   mini-batch. It is optional.
6094
    :type weight: LayerOutout
R
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6095 6096
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
L
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    :type layer_attr: ExtraLayerAttribute
D
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6098
    :return: LayerOutput object.
R
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6099
    :rtype: LayerOutput
Z
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6100 6101
    """

6102
    ipts, parents = __cost_input__(input, label, weight)
Q
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6103 6104 6105
    Layer(
        name=name,
        type=LayerType.CROSS_ENTROPY,
6106
        inputs=ipts,
Q
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6107 6108
        coeff=coeff,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
6109
    return LayerOutput(name, LayerType.CROSS_ENTROPY, parents=parents, size=1)
Z
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6110

6111

Z
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6112
@wrap_name_default()
L
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6113
@layer_support()
Q
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6114 6115 6116 6117
def cross_entropy_with_selfnorm(input,
                                label,
                                name=None,
                                coeff=1.0,
L
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6118 6119
                                softmax_selfnorm_alpha=0.1,
                                layer_attr=None):
Z
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6120 6121
    """
    A loss layer for multi class entropy with selfnorm.
6122
    Input should be a vector of positive numbers, without normalization.
Z
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6123

C
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6124 6125
    The example usage is:

Z
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6126 6127
    .. code-block:: python

X
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6128
       cost = cross_entropy_with_selfnorm(input=input_layer,
L
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6129
                                          label=label_layer)
Z
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6130 6131

    :param input: The first input layer.
R
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6132
    :type input: LayerOutput
Z
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6133
    :param label: The input label.
R
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6134
    :type input: LayerOutput
R
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6135
    :param name: The name of this layer. It is optional.
R
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6136 6137
    :type name: basestring
    :param coeff: The weight of the gradient in the back propagation.
6138
                  1.0 is the default value.
R
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6139
    :type coeff: float
Z
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6140
    :param softmax_selfnorm_alpha: The scale factor affects the cost.
R
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6141 6142 6143
    :type softmax_selfnorm_alpha: float
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
L
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6144
    :type layer_attr: ExtraLayerAttribute
D
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6145
    :return: LayerOutput object.
R
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6146
    :rtype: LayerOutput
Z
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6147
    """
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6148 6149 6150 6151 6152 6153 6154
    Layer(
        name=name,
        type=LayerType.CROSS_ENTROPY_WITH_SELFNORM,
        inputs=[input.name, label.name],
        coeff=coeff,
        softmax_selfnorm_alpha=softmax_selfnorm_alpha,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
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6155

Q
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6156 6157 6158 6159 6160
    return LayerOutput(
        name,
        LayerType.CROSS_ENTROPY_WITH_SELFNORM,
        parents=[input, label],
        size=1)
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6161

6162

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6163 6164 6165 6166
@wrap_name_default()
@layer_support()
def sum_cost(input, name=None, layer_attr=None):
    """
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6167
    A loss layer which calculates the sum of the input as loss.
X
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6168

C
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6169 6170
    The example usage is:

X
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6171 6172
    .. code-block:: python

L
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6173
       cost = sum_cost(input=input_layer)
X
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6174

R
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6175
    :param input: The input of this layer.
R
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6176
    :type input: LayerOutput
R
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6177
    :param name: The name of this layer. It is optional.
R
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6178 6179 6180
    :type name: basestring
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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6181 6182 6183 6184
    :type layer_attr: ExtraLayerAttribute
    :return: LayerOutput object.
    :rtype: LayerOutput.
    """
L
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6185
    assert isinstance(input, LayerOutput)
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6186 6187 6188 6189 6190
    Layer(
        name=name,
        type=LayerType.SUM_COST,
        inputs=[input.name],
        **ExtraLayerAttribute.to_kwargs(layer_attr))
X
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6191

Q
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6192
    return LayerOutput(name, LayerType.SUM_COST, parents=[input], size=1)
X
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6193 6194


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6195
@wrap_name_default()
L
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6196
@layer_support()
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6197 6198 6199 6200 6201 6202
def huber_regression_cost(input,
                          label,
                          name=None,
                          delta=1.0,
                          coeff=1.0,
                          layer_attr=None):
Z
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6203
    """
6204 6205 6206
    In statistics, the Huber loss is a loss function used in robust regression,
    that is less sensitive to outliers in data than the squared error loss.
    Given a prediction f(x), a label y and :math:`\delta`, the loss function
L
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6207 6208
    is defined as:

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6209 6210 6211 6212 6213
    .. math::

       loss = 0.5*(y-f(x))^{2}, | y-f(x) | < \delta

       loss = \delta | y-f(x) | - 0.5 \delta ^2, otherwise
Z
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6214

C
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6215 6216
    The example usage is:

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    .. code-block:: python

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       cost = huber_regression_cost(input=input_layer, label=label_layer)
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    :param input: The first input layer.
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    :type input: LayerOutput
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    :param label: The input label.
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    :type input: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param delta: The difference between the observed and predicted values.
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    :type delta: float
    :param coeff: The weight of the gradient in the back propagation.
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                  1.0 is the default value.
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    :type coeff: float
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput.
    """
6238
    assert isinstance(input, LayerOutput)
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    Layer(
        name=name,
        type=LayerType.HUBER_REGRESSION,
        inputs=[input.name, label.name],
        delta=delta,
        coeff=coeff,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.HUBER_REGRESSION, parents=[input, label], size=1)


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@wrap_name_default()
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@layer_support()
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def huber_classification_cost(input,
                              label,
                              name=None,
                              coeff=1.0,
                              layer_attr=None):
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    """
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    For classification purposes, a variant of the Huber loss called modified Huber
    is sometimes used. Given a prediction f(x) (a real-valued classifier score) and
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    a true binary class label :math:`y\in \{-1, 1 \}`, the modified Huber
6261 6262 6263
    loss is defined as:

    .. math:
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       loss = \max ( 0, 1-yf(x) )^2, yf(x) \geq -1

       loss = -4yf(x), otherwise
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    The example usage is:

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    .. code-block:: python

6273
       cost = huber_classification_cost(input=input_layer, label=label_layer)
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    :param input: The first input layer.
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    :type input: LayerOutput
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    :param label: The input label.
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    :type input: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :param coeff: The weight of the gradient in the back propagation.
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                  1.0 is the default value.
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    :type coeff: float
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
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    """
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    assert isinstance(input, LayerOutput)
    if input.size is not None:
        assert input.size == 1
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    Layer(
        name=name,
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        type=LayerType.HUBER_CLASSIFICATION,
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        inputs=[input.name, label.name],
        coeff=coeff,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
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    return LayerOutput(
        name, LayerType.HUBER_CLASSIFICATION, parents=[input, label], size=1)
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6302

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@wrap_name_default()
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@layer_support()
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def multi_binary_label_cross_entropy(input,
                                     label,
                                     name=None,
                                     coeff=1.0,
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                                     layer_attr=None):
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    """
    A loss layer for multi binary label cross entropy.

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    The example usage is:

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    .. code-block:: python

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       cost = multi_binary_label_cross_entropy(input=input_layer,
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                                               label=label_layer)
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    :param input: The first input layer.
    :type input: LayerOutput
    :param label: The input label.
    :type input: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :param coeff: The weight of the gradient in the back propagation.
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                  1.0 is the default value.
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    :type coeff: float
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :return: LayerOutput object.
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    :rtype: LayerOutput
    """

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    if input.activation is None or \
            not isinstance(input.activation, SigmoidActivation):
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        logger.log(logging.WARN,
                   ("%s is not a recommended activation for "
                    "multi_binary_label_cross_entropy, sigmoid is better") %
                   repr(input.activation))
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    Layer(
        name=name,
        type=LayerType.MULTI_BIN_LABEL_CROSS_ENTROPY,
        inputs=[input.name, label.name],
        coeff=coeff,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        LayerType.MULTI_BIN_LABEL_CROSS_ENTROPY,
        parents=[input, label],
        size=1)
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class BeamInput(object):
    """
    Define the input for cross_entropy_over_beam layer.

    A beam is made up of a triple: the first one is scores over all
    candidates; the second one is indices of top k selected candidates; the
    third one is the index of ground truth, which is also always called
    gold.
    """

    def __init__(self, candidate_scores, selected_candidates, gold):
        assert isinstance(candidate_scores, LayerOutput)
        self.candidate_scores = candidate_scores
        assert candidate_scores.size == 1

        assert isinstance(selected_candidates, LayerOutput)
        self.selected_candidates = selected_candidates

        assert isinstance(gold, LayerOutput)
        self.gold = gold


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@wrap_name_default()
@layer_support()
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def cross_entropy_over_beam(input, name=None):
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    """
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    This layer is used in learning to search models, which is to solve complex
    joint prediction problems based on learning to search through a
    problem-defined search space.
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    Specifically, the learning to search process for this layer begins with
    searching a target sequence from a nested sequence. In the first search
    step, top beam size sequences with highest scores, indices of these top k
    sequences in the original nested sequence, and the ground truth (also
    called gold) altogether (a triple) make up of the first beam.
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    Then, several special positions, for example, start and end positions
    that define meaningful segments are searched. In these searches, top k
    positions with highest scores are selected, and then sequence, starting
    from the selected starts till ends of the sequences (or a fixed position)
    are taken to search next.
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    We call the possible top k results returned in one search the beam. This
    search process can be repeated for pre-defined turns and leads to several
    beam expansions.
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    Finally, the layer cross_entropy_over_beam takes all the beam expansions
    which contain several candidate targets found along the multi-step search.
    cross_entropy_over_beam calculates cross entropy over the expanded beams
    which all the candidates in the beam as the normalized factor.
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    Note that, if gold falls off the beam at search step t, then the cost is
    calculated over the beam at step t.

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    This cost layer always works together with kmax_seq_score_layer,
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    sub_nested_seq_layer, and sequence_slice_layer to trim the input to form a
    sub-search space.
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    The example usage is:

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    .. code-block:: python

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       cost = cross_entropy_over_beam(input=[
           BeamInput(
               candidate_scores=beam1_candidates,
               selected_candidates=beam1_topk,
               gold=gold1),
           BeamInput(
               candidate_scores=beam2_candidates,
               selected_candidates=beam2_topk,
               gold=gold2),
       ])


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    :param input: Input beams for this layer.
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    :type input: BeamInput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    if isinstance(input, BeamInput):
        input = [input]
    else:
        assert isinstance(input, list), (
            'input for cross_entropy_over_beam shold be a python list '
            'of BeamInput object.')
        for ipt in input:
            assert isinstance(ipt, BeamInput), (
                'input for cross_entropy_over_beam '
                'should be a BeamInput object.')

    ipts = []
    parents = []
    for beam in input:
        parents += [beam.candidate_scores, beam.selected_candidates, beam.gold]
        ipts += [
            beam.candidate_scores.name, beam.selected_candidates.name,
            beam.gold.name
        ]

    Layer(name=name, type=LayerType.CROSS_ENTROPY_OVER_BEAM, inputs=ipts)
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    return LayerOutput(name, LayerType.CROSS_ENTROPY, parents=parents, size=1)


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@wrap_name_default()
@layer_support()
6465
def smooth_l1_cost(input, label, name=None, coeff=1.0, layer_attr=None):
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    """
    This is a L1 loss but more smooth. It requires that the
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    sizes of input and label are equal. The formula is as follows,
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    .. math::

        L = \sum_{i} smooth_{L1}(input_i - label_i)

    in which

    .. math::

6478
        smooth_{L1}(x) = \\begin{cases} 0.5x^2& \\text{if}  \\ |x| < 1 \\\\ |x|-0.5& \\text{otherwise} \end{cases}
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    Reference:
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        `Fast R-CNN
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        <https://arxiv.org/pdf/1504.08083v2.pdf>`_
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    The example usage is:

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    .. code-block:: python

6488 6489
       cost = smooth_l1_cost(input=input_layer,
                             label=label_layer)
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    :param input: The input layer.
    :type input: LayerOutput
    :param label: The input label.
    :type input: LayerOutput
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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param coeff: The weight of the gradient in the back propagation.
6498
                  1.0 is the default value.
6499
    :type coeff: float
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
    assert isinstance(label, LayerOutput)
    assert input.size == label.size

    Layer(
        name=name,
        type=LayerType.SMOOTH_L1,
        inputs=[input.name, label.name],
6514
        coeff=coeff,
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        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.SMOOTH_L1, parents=[input, label], size=1)
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@wrap_name_default()
def multiplex_layer(input, name=None, layer_attr=None):
    """
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    This layer multiplex multiple layers according to the indexes,
    which are provided by the first input layer.
    inputs[0]: the indexes of the layers to form the output of size batchSize.
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    inputs[1:N]; the candidate output data.
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    For each index i from 0 to batchSize - 1, the i-th row of the output is the
    the same to the i-th row of the (index[i] + 1)-th layer.
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    For each i-th row of output:
    .. math::
        y[i][j] = x_{x_{0}[i] + 1}[i][j], j = 0,1, ... , (x_{1}.width - 1)

    where, y is output. :math:`x_{k}` is the k-th input layer and
    :math:`k = x_{0}[i] + 1`.

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    The example usage is:

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    .. code-block:: python

       maxid = multiplex_layer(input=layers)

    :param input: Input layers.
    :type input: list of LayerOutput
6545
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute.
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    assert isinstance(input, collections.Sequence)
    assert len(input) > 2, 'multiplex_layer should have more than 2 inputs'
    for i in range(1, len(input)):
        assert isinstance(input[i], LayerOutput)
        assert input[i].size == input[1].size, \
            "All the input layers except the first one should have the same size"

    l = Layer(
        name=name,
        type='multiplex',
        inputs=[x.name for x in input],
        size=input[1].size,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.MULTIPLEX_LAYER,
        parents=input,
        size=l.config.size)
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@wrap_name_default("dropout")
def dropout_layer(input, dropout_rate, name=None):
    """

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    The example usage is:

    .. code-block:: python

        dropout = dropout_layer(input=input_layer, dropout_rate=0.5)

6584
    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
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    :type input: LayerOutput
    :param dropout_rate: The probability of dropout.
    :type dropout_rate: float
    :return: LayerOutput object.
    :rtype: LayerOutput
6592 6593 6594 6595 6596 6597 6598
    """
    return addto_layer(
        name=name,
        input=input,
        act=LinearActivation(),
        bias_attr=False,
        layer_attr=ExtraAttr(drop_rate=dropout_rate))
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@wrap_name_default()
@wrap_act_default(act=LinearActivation())
@wrap_param_attr_default()
@layer_support(DROPOUT)
def row_conv_layer(input,
                   context_len,
                   act=None,
                   name=None,
                   param_attr=None,
                   layer_attr=None):
    """

    The row convolution is called lookahead convolution. It is firstly
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    introduced in paper of `Deep Speech 2: End-to-End Speech Recognition
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    in English and Mandarin <https://arxiv.org/pdf/1512.02595v1.pdf>`_ .

    The bidirectional RNN that learns representation for a sequence by
    performing a forward and a backward pass through the entire sequence.
    However, unlike unidirectional RNNs, bidirectional RNNs are challenging
    to deploy in an online and low-latency setting. The lookahead convolution
    incorporates information from future subsequences in a computationally
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    efficient manner to improve unidirectional RNNs.
6623

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    The connection of row convolution is different from the 1D sequence
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    convolution. Assumed that, the future context-length is k, that is to say,
    it can get the output at timestep t by using the the input feature from t-th
    timestep to (t+k+1)-th timestep. Assumed that the hidden dim of input
    activations are d, the activations r_t for the new layer at time-step t are:
6629

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    .. math::

        r_{t,r} = \sum_{j=1}^{k + 1} {w_{i,j}h_{t+j-1, i}}
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                  \quad \\text{for} \quad  (1 \leq i \leq d)
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    Note:
        The `context_len` is `k + 1`. That is to say, the lookahead step
        number plus one equals context_len.


    .. code-block:: python

       row_conv = row_conv_layer(input=input_layer, context_len=3)


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    :param input: The input of this layer.
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    :type input: LayerOutput
    :param context_len: The context length equals the lookahead step number
                        plus one.
    :type context_len: int
6650
    :param act: Activation Type. LinearActivation is the default activation.
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    :type act: BaseActivation
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    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
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    :type param_attr: ParameterAttribute
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    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute | None
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    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
    assert context_len > 0, "the context_len must be greatet than 0."

    Layer(
        inputs=[Input(input.name, **param_attr.attr)],
        name=name,
        context_length=context_len,
        type=LayerType.ROW_CONV_LAYER,
        active_type=act.name,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.ROW_CONV_LAYER, input, activation=act, size=input.size)
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6675 6676 6677 6678 6679
@layer_support()
@wrap_name_default()
def prelu_layer(input,
                name=None,
                partial_sum=1,
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                channel_shared=None,
                num_channels=None,
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                param_attr=None,
                layer_attr=None):
    """
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    The Parametric Relu activation that actives outputs with a learnable weight.
6686 6687

    Reference:
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        `Delving Deep into Rectifiers: Surpassing Human-Level Performance on
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        ImageNet Classification <http://arxiv.org/pdf/1502.01852v1.pdf>`_
6690 6691 6692 6693 6694

    .. math::
       z_i &\\quad if \\quad z_i > 0 \\\\
       a_i * z_i  &\\quad \\mathrm{otherwise}

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    The example usage is:

    .. code-block:: python

       prelu = prelu_layer(input=layers, partial_sum=1)

6701
    :param name: The name of this layer. It is optional.
6702
    :type name: basestring
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    :param input: The input of this layer.
6704
    :type input: LayerOutput
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    :param partial_sum: this parameter makes a group of inputs share the same weight.
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6706 6707

        - partial_sum = 1, indicates the element-wise activation: each element has a weight.
R
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6708 6709
        - partial_sum = number of elements in one channel, indicates the channel-wise activation, elements in a channel share the same weight.
        - partial_sum = number of outputs, indicates all elements share the same weight.
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6710 6711

    :type partial_sum: int
6712
    :param channel_shared: whether or not the parameter are shared across channels.
Z
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6713

6714 6715
        - channel_shared = True, we set the partial_sum to the number of outputs.
        - channel_shared = False, we set the partial_sum to the number of elements in one channel.
Z
Zhaolong Xing 已提交
6716

6717
    :type channel_shared: bool
6718 6719
    :param num_channels: number of input channel.
    :type num_channels: int
6720
    :param param_attr: The parameter attribute. See ParameterAttribute for details.
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6721 6722 6723
    :type param_attr: ParameterAttribute
    :param layer_attr: The extra layer attribute. See ExtraLayerAttribute for
                       details.
R
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6724
    :type layer_attr: ExtraLayerAttribute | None
6725 6726 6727 6728
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

6729
    assert isinstance(input, LayerOutput), 'prelu_layer accepts only one input.'
X
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6730

6731
    if not param_attr:
X
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6732
        param_attr = ParamAttr(initial_mean=0.25, initial_std=0.0)
6733 6734 6735 6736
    else:
        assert isinstance(param_attr, ParameterAttribute)

    if num_channels is None:
6737 6738
        assert input.num_filters is not None, \
                'the input channel cannot be detected, please specify the num_channels parameter'
6739 6740 6741 6742
        num_channels = input.num_filters

    if channel_shared is not None:
        assert isinstance(channel_shared, bool)
6743 6744
        assert (input.height != 0 and input.width != 0), \
            'input height and widht must be setted'
6745 6746 6747 6748
        if channel_shared:
            partial_sum = input.height * input.width * num_channels
        else:
            partial_sum = input.height * input.width
6749 6750 6751

    l = Layer(
        name=name,
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6752
        type=LayerType.PRELU,
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6753
        inputs=Input(input.name, **param_attr.attr),
6754 6755 6756 6757 6758 6759
        partial_sum=partial_sum,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.PRELU,
        parents=input,
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6760
        num_filters=num_channels,
6761
        size=l.config.size)
6762 6763


6764
@wrap_name_default()
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6765
@layer_support(ERROR_CLIPPING, DROPOUT)
6766 6767 6768 6769 6770 6771 6772
@wrap_act_default(act=LinearActivation())
def gated_unit_layer(input,
                     size,
                     act=None,
                     name=None,
                     gate_attr=None,
                     gate_param_attr=None,
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6773 6774
                     gate_bias_attr=True,
                     inproj_attr=None,
6775 6776 6777 6778 6779 6780 6781
                     inproj_param_attr=None,
                     inproj_bias_attr=True,
                     layer_attr=None):
    """
    The gated unit layer implements a simple gating mechanism over the input.
    The input :math:`X` is first projected into a new space :math:`X'`, and
    it is also used to produce a gate weight :math:`\sigma`. Element-wise
R
fix doc  
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6782
    product between :math:`X'` and :math:`\sigma` is finally returned.
6783 6784

    Reference:
R
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6785
        `Language Modeling with Gated Convolutional Networks
R
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6786
        <https://arxiv.org/abs/1612.08083>`_
6787 6788 6789 6790 6791 6792 6793 6794 6795

    .. math::
       y=\\text{act}(X \cdot W + b)\otimes \sigma(X \cdot V + c)

    The example usage is:

    .. code-block:: python
        gated_unit = gated_unit_layer(size=128, input=input_layer))

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6796
    :param input: The input of this layer.
6797
    :type input: LayerOutput
R
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6798
    :param size: The dimension of this layer's output.
6799
    :type size: int
6800 6801
    :param act: Activation type of the projection. LinearActivation is the default
                activation.
6802
    :type act: BaseActivation
6803
    :param name: The name of this layer. It is optional.
6804
    :type name: basestring
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6805 6806
    :param gate_attr: The extra layer attribute of the gate. See ExtraLayerAttribute for
                      details.
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6807
    :type gate_attr: ExtraLayerAttribute | None
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6808 6809 6810
    :param gate_param_attr: The parameter attribute of the gate. See ParameterAttribute
                            for details.
    :type gate_param_attr: ParameterAttribute
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    :param gate_bias_attr: The bias attribute of the gate. If this parameter is set to False or
R
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                           an object whose type is not ParameterAttribute, no bias is defined.
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6813
                           If this parameter is set to True, the bias is initialized to zero.
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    :type gate_bias_attr: ParameterAttribute | bool | None | Any
    :param inproj_attr: Extra layer attributes of the projection. See ExtraLayerAttribute for
                        details.
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6817
    :type inproj_attr: ExtraLayerAttribute | None
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6818 6819 6820
    :param inproj_param_attr: The parameter attribute of the projection. See ParameterAttribute
                              for details.
    :type inproj_param_attr: ParameterAttribute
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6821
    :param inproj_bias_attr: The bias attribute of the projection. If this parameter is set to False
R
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6822
                             or an object whose type is not ParameterAttribute, no bias is defined.
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6823
                             If this parameter is set to True, the bias is initialized to zero.
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6824 6825 6826
    :type inproj_bias_attr: ParameterAttribute | bool | None | Any
    :param layer_attr: Extra layer attribute of the product. See ExtraLayerAttribute for
                       details.
R
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6827
    :type layer_attr: ExtraLayerAttribute | None
6828 6829 6830 6831 6832 6833 6834 6835 6836 6837 6838 6839
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    assert isinstance(
        input, LayerOutput), 'The gated linear unit accepts only one input.'

    input_proj = fc_layer(
        input=input,
        name="%s_input_proj" % name,
        size=size,
        act=act,
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6840
        layer_attr=inproj_attr,
6841 6842 6843 6844 6845 6846 6847 6848 6849
        param_attr=inproj_param_attr,
        bias_attr=inproj_bias_attr)

    gate = fc_layer(
        size=size,
        name="%s_gate" % name,
        act=SigmoidActivation(),
        input=input,
        layer_attr=gate_attr,
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        param_attr=gate_param_attr,
6851 6852 6853 6854 6855
        bias_attr=gate_bias_attr)
    return mixed_layer(
        name="%s_gated_act" % name,
        input=dotmul_operator(input_proj, gate),
        layer_attr=layer_attr)
6856 6857


6858
@layer_support()
6859
@wrap_name_default('switch_order')
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def switch_order_layer(input,
                       name=None,
6862
                       reshape_axis=None,
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                       act=None,
                       layer_attr=None):
6865
    """
6866
    This layer switch dimension order of image input.
6867 6868
    From order "batchSize, channels, height, width"
    to order "batchSize, height, width, channels".
6869 6870 6871 6872

    The example usage is:

    .. code-block:: python
6873 6874
       reshape_axis = 3
       switch = switch_order(input=layer, name='switch', reshape_axis=reshape_axis)
6875
       reshape = {'height':[ 0, 1, 2], 'width':[3]}
6876

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6877
    :param input: The input of this layer.
6878
    :type input: LayerOutput
6879
    :param name: The name of this layer. It is optional.
6880
    :type name: basestring
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6881 6882
    :param reshape_axis: Specify the axises of 'height'. Its value should be positive and less than 4.
    :type reshape_axis: int
6883 6884 6885
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
6886
    assert isinstance(input, LayerOutput)
6887 6888 6889 6890 6891
    assert reshape_axis != None and (reshape_axis > 0 and reshape_axis < 4)
    height = [ele for ele in xrange(reshape_axis)]
    width = [ele for ele in range(reshape_axis, 4)]
    reshape = {'height': height, 'width': width}

6892 6893
    l = Layer(
        name=name,
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        inputs=input.name,
6895 6896
        reshape=reshape,
        type=LayerType.SWITCH_ORDER_LAYER,
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        active_type=act.name,
6898 6899 6900
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
6901
        layer_type=LayerType.SWITCH_ORDER_LAYER,
6902
        activation=act,
6903 6904
        parents=input,
        size=l.config.size)
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6905 6906


6907 6908
@wrap_name_default()
@layer_support()
6909
def crop_layer(input, offset, axis=2, shape=None, name=None, layer_attr=None):
6910
    """
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    This layer crops images according to the offset and shape. Users can set
    the crop shape through the argument 'shape' explicitly or by specifying a
    reference input layer.
6914

6915 6916 6917
    The example usage is:

    .. code-block:: python
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6918
    crop = crop_layer(input=[image_input, reference_input], axis=2, offset=[2, 3])
6919

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    :param input: The input of this layer. If two inputs are given, the second one
                  will be regarded as the reference.
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                  And the input must be 4-dims and in NCHW order.
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6923 6924
    :type input: LayerOutput | Sequence
    :param offset: The crop offset.
6925
    :type offset: Sequence
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6926
    :param axis: The start axis to be cropped. For image input layer:
6927 6928 6929 6930
        - 0: batch size
        - 1: channels
        - 2: height
        - 3: width
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6931 6932
    :type axis: int
    :param shape: The shape to be cropped to. Default is None.
6933
    :type shape: Sequence | None
6934
    :param name: The name of this layer. It is optional.
6935 6936 6937 6938 6939 6940 6941 6942 6943 6944 6945 6946 6947 6948 6949 6950 6951 6952 6953 6954 6955
    :type name: basestring
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    if isinstance(input, LayerOutput):
        input = [input]
    else:
        assert isinstance(input, collections.Sequence)
    l = Layer(
        inputs=[x.name for x in input],
        axis=axis,
        offset=offset,
        shape=shape,
        name=name,
        type=LayerType.CROP_LAYER,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name=name,
        layer_type=LayerType.CROP_LAYER,
        parents=input,
        size=l.config.size)
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6958 6959
@wrap_name_default()
@layer_support()
6960
def sub_nested_seq_layer(input, selected_indices, name=None):
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6961
    """
6962
    The sub_nested_seq_layer accepts two inputs: the first one is a nested
6963
    sequence; the second one is a set of selceted indices in the nested sequence.
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6964

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6965 6966 6967
    Then sub_nest_seq_layer trims the first nested sequence input according
    to the selected indices to form a new output. This layer is useful in
    beam training.
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6968 6969 6970 6971

    The example usage is:

    .. code-block:: python
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6972

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6973
        sub_nest_seq = sub_nested_seq_layer(input=data, selected_indices=selected_ids)
6974

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6975

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6976
    :param input: The input of this layer. It is a nested sequence.
6977
    :type input: LayerOutput
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6978
    :param selected_indices: A set of sequence indices in the nested sequence.
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6979
    :type input: LayerOutput
6980
    :param name: The name of this layer. It is optional.
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6981 6982 6983 6984
    :type name: basestring
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
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6985

6986 6987 6988 6989 6990 6991 6992
    assert isinstance(input, LayerOutput), (
        'The first input of '
        'sub_nested_seq_layer must be a Paddle layer.')
    assert isinstance(selected_indices, LayerOutput), (
        'The second input of '
        'sub_nested_seq_layer must be a Paddle layer.')

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6993
    l = Layer(
6994 6995
        inputs=input.name,
        selected_indices=selected_indices.name,
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6996 6997 6998 6999 7000 7001 7002
        name=name,
        type=LayerType.SUB_NESTED_SEQ)
    return LayerOutput(
        name=name,
        layer_type=LayerType.SUB_NESTED_SEQ,
        parents=input,
        size=l.config.size)
7003 7004


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7005
@wrap_name_default("clip")
7006
def clip_layer(input, min, max, name=None):
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7007 7008 7009 7010 7011
    """
    A layer for clipping the input value by the threshold.

    .. math::

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7012
        out[i] = \min (\max (in[i],p_{1} ),p_{2} )
G
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7013 7014 7015

    .. code-block:: python

7016
        clip = clip_layer(input=input_layer, min=-10, max=10)
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7017

7018
    :param name: The name of this layer. It is optional.
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7019
    :type name: basestring
R
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7020
    :param input: The input of this layer.
G
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7021
    :type input: LayerOutput.
7022
    :param min: The lower threshold for clipping.
R
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7023
    :type min: float
7024
    :param max: The upper threshold for clipping.
R
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7025
    :type max: float
7026 7027
    :return: LayerOutput object.
    :rtype: LayerOutput
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7028 7029 7030 7031 7032
    """
    Layer(
        name=name,
        type=LayerType.CLIP_LAYER,
        inputs=[input.name],
7033 7034
        min=min,
        max=max)
G
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7035 7036
    return LayerOutput(
        name, LayerType.CLIP_LAYER, parents=[input], size=input.size)
7037 7038


7039 7040 7041 7042 7043 7044 7045 7046 7047 7048 7049 7050 7051 7052 7053 7054 7055 7056 7057 7058 7059 7060 7061 7062
@wrap_name_default()
def seq_slice_layer(input, starts, ends, name=None):
    """
    seq_slice_layer will return one or several sub-sequences from the
    input sequence layer given start and end indices.

        - If only start indices are given, and end indices are set to None,
          this layer slices the input sequence from the given start indices
          to its end.
        - If only end indices are given, and start indices are set to None,
          this layer slices the input sequence from its beginning to the
          given end indices.
        - If start and end indices are both given, they should have the same
          number of elements.

    If start or end indices contains more than one elements, the input sequence
    will be sliced for multiple times.


    .. code-block:: python

        seq_silce = seq_slice_layer(input=input_seq,
                                    starts=start_pos, ends=end_pos)

7063
    :param name: The name of this layer. It is optional.
7064
    :type name: basestring
R
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7065
    :param input: The input of this layer, which should be a sequence.
7066
    :type input: LayerOutput
R
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7067
    :param starts: The start indices to slice the input sequence.
R
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7068
    :type starts: LayerOutput | None
R
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7069
    :param ends: The end indices to slice the input sequence.
R
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7070
    :type ends: LayerOutput | None
7071 7072 7073 7074 7075 7076 7077 7078 7079 7080 7081 7082 7083 7084 7085 7086 7087 7088 7089 7090 7091 7092 7093 7094 7095 7096 7097 7098 7099 7100 7101
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    assert isinstance(input, LayerOutput), (
        'The first input of seq_slice layer must be a PaddlePaddle layer.')

    if starts is not None:
        assert isinstance(starts, LayerOutput), (
            'The start indices for seq_slice layer '
            'must be a PaddlePaddle layer.')
    if ends is not None:
        assert isinstance(ends, LayerOutput), (
            'The end indices for seq_slice layer must be a PaddlePaddle layer.')
    assert starts is not None or ends is not None, (
        'start and end indices '
        'cannot be set to None at the same time, at least one of '
        'them should be given.')
    if starts is not None and ends is not None:
        assert starts.size == ends.size, (
            'If start and end indices are both given to seq_slice_layer, '
            'they should have the same width.')

    Layer(
        name=name,
        type=LayerType.SEQ_SLICE,
        inputs=input.name,
        starts=starts.name if starts is not None else None,
        ends=ends.name if ends is not None else None)
    return LayerOutput(
        name, LayerType.SEQ_SLICE, parents=[input], size=input.size)
7102 7103


7104 7105
@wrap_name_default()
@layer_support()
7106
def kmax_seq_score_layer(input, name=None, beam_size=1):
7107
    """
R
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7108
    This layer accepts one input which is scores over a sequence or a nested
7109 7110 7111 7112
    sequence, and returns indices of beam_size sequences with highest scores.

    .. code-block:: python

7113
        kmax_indices = kmax_seq_score_layer(input=input_layer, beam_size)
7114 7115


7116
    :param name: The name of this layer. It is optional.
7117
    :type name: basestring
R
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7118 7119
    :param input: The input of this layer. It stores scores over a sequence or
                  a nested sequence and its size must be 1.
R
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7120
    :type input: LayerOutput
R
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7121 7122
    :param beam_size: The indices of the sequences with top beam_size scores are returned.
    :type beam_size: int
7123 7124 7125
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
7126
    assert isinstance(input, LayerOutput), ("kmax_seq_score_layer "
7127
                                            "accepts only one input.")
7128
    assert input.size == 1, (
7129
        "input of kmax_seq_score_layer is a score "
7130 7131 7132 7133 7134 7135 7136 7137 7138 7139
        "over a sequence or a nested sequence, so its width must be 1.")

    Layer(
        name=name,
        type=LayerType.KMAX_SEQ_SCORE,
        inputs=[input.name],
        beam_size=beam_size)

    return LayerOutput(
        name, LayerType.KMAX_SEQ_SCORE, parents=[input], size=input.size)
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7140 7141


7142 7143 7144 7145 7146 7147 7148 7149 7150 7151 7152 7153 7154 7155 7156 7157 7158 7159 7160 7161 7162 7163 7164 7165 7166 7167
@wrap_name_default("conv3d")
@wrap_param_attr_default()
@wrap_bias_attr_default()
@wrap_act_default(act=ReluActivation())
@layer_support(DROPOUT)
def img_conv3d_layer(input,
                     filter_size,
                     num_filters,
                     name=None,
                     num_channels=None,
                     act=None,
                     groups=1,
                     stride=1,
                     padding=0,
                     bias_attr=None,
                     param_attr=None,
                     shared_biases=True,
                     layer_attr=None,
                     trans=False,
                     layer_type=None):
    """

    The example usage is:

    ..  code-block:: python

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7168
        conv = img_conv3d_layer(input=data, filter_size=1,
7169 7170 7171 7172 7173
                              num_channels=8,
                              num_filters=16, stride=1,
                              bias_attr=False,
                              act=ReluActivation())

7174
    :param name: The name of this layer. It is optional.
7175
    :type name: basestring
R
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7176
    :param input: The input of this layer.
7177
    :type input: LayerOutput
R
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7178 7179
    :param filter_size: The dimensions of the filter kernel along three axises. If the parameter
                        is set to one integer, the three dimensions will be same.
R
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7180
    :type filter_size: int | tuple | list
P
init  
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7181
    :param num_filters: The number of filters. It is as same as the output image channel.
R
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7182
    :type num_filters: int
7183
    :param act: Activation type. ReluActivation is the default activation.
7184
    :type act: BaseActivation
R
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7185
    :param groups: The number of the filter groups.
7186
    :type groups: int
R
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7187 7188
    :param stride: The strides of the convolution along three axises. If the parameter
                   is set to one integer, the three strides will be same.
R
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7189
    :type stride: int | tuple | list
R
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7190 7191
    :param padding: The numbers of padding along three axises. If the parameter is set to
                    one integer, they will be same.
R
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7192
    :type padding: int | tuple | list
R
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7193 7194 7195
    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
R
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7196
    :type bias_attr: ParameterAttribute | None | bool | Any
R
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7197
    :param num_channels: The number of input channels. If the parameter is not set or
R
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7198 7199
                         set to None, its actual value will be automatically set to
                         the channels number of the input.
7200
    :type num_channels: int
R
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7201 7202
    :param param_attr: The parameter attribute of the convolution. See ParameterAttribute for
                       details.
7203
    :type param_attr: ParameterAttribute
R
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7204
    :param shared_biases: Whether biases will be shared between filters or not.
7205
    :type shared_biases: bool
R
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    :param layer_attr: The extra layer attributes. See ExtraLayerAttribute for
                       details.
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    :type layer_attr: ExtraLayerAttribute
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    :param trans: True if it is a convTransLayer, False if it is a convLayer
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    :type trans: bool
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    :param layer_type: Specify the layer type. If the parameter is set, it must be "deconv3d"
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                       when trans=True. If not set, it will be automatically set to "deconv3d"
                       when trans=True and "conv3d" when trans=False.
    :type layer_type: basestring
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    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    if num_channels is None:
        assert input.num_filters is not None
        num_channels = input.num_filters

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    if isinstance(filter_size, collections.Sequence):
        assert len(filter_size) == 3
        filter_size, filter_size_y, filter_size_z = filter_size
    else:
        filter_size_y = filter_size
        filter_size_z = filter_size
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    if isinstance(stride, collections.Sequence):
        assert len(stride) == 3
        stride, stride_y, stride_z = stride
    else:
        stride_y = stride
        stride_z = stride
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    if isinstance(padding, collections.Sequence):
        assert len(padding) == 3
        padding, padding_y, padding_z = padding
    else:
        padding_y = padding
        padding_z = padding
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    if param_attr.attr.get('initial_smart'):
        # special initial for conv layers.
        init_w = (2.0 / (filter_size**2 * num_channels))**0.5
        param_attr.attr["initial_mean"] = 0.0
        param_attr.attr["initial_std"] = init_w
        param_attr.attr["initial_strategy"] = 0
        param_attr.attr["initial_smart"] = False

    if layer_type:
        if trans:
            assert layer_type in ["deconv3d"]
        lt = layer_type
    else:
        lt = LayerType.DECONV3D_LAYER if trans else LayerType.CONV3D_LAYER

    l = Layer(
        name=name,
        inputs=Input(
            input.name,
            conv=Conv3D(
                filter_size=filter_size,
                padding=padding,
                stride=stride,
                channels=num_channels,
                groups=groups,
                filter_size_y=filter_size_y,
                padding_y=padding_y,
                stride_y=stride_y,
                filter_size_z=filter_size_z,
                padding_z=padding_z,
                stride_z=stride_z),
            **param_attr.attr),
        active_type=act.name,
        num_filters=num_filters,
        bias=ParamAttr.to_bias(bias_attr),
        shared_biases=shared_biases,
        type=lt,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name,
        lt,
        parents=[input],
        activation=act,
        num_filters=num_filters,
        size=l.config.size)
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@wrap_name_default("scale_shift")
@wrap_param_attr_default()
@wrap_bias_attr_default()
def scale_shift_layer(input, name=None, param_attr=None, bias_attr=None):
    """
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    A layer applies a linear transformation to each element in each row of
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    the input matrix. For each element, the layer first re-scales it and then
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    adds a bias to it.

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    This layer is very like the SlopeInterceptLayer, except the scale and
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    bias are trainable.

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    .. math::

        y = w * x + b

    .. code-block:: python

        scale_shift = scale_shift_layer(input=input_layer, bias_attr=False)

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    :param name: The name of this layer. It is optional.
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    :type name: basestring
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    :param input: The input of this layer.
    :type input: LayerOutput
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    :param param_attr: The parameter attribute of scaling. See ParameterAttribute for
                      details.
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    :type param_attr: ParameterAttribute
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
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    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    Layer(
        name=name,
        type=LayerType.SCALE_SHIFT_LAYER,
        inputs=Input(input.name, **param_attr.attr),
        bias=ParamAttr.to_bias(bias_attr))
    return LayerOutput(
        name, LayerType.SCALE_SHIFT_LAYER, parents=[input], size=input.size)
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@wrap_name_default("resize")
def resize_layer(input, size, name=None):
    """
    The resize layer resizes the input matrix with a shape of [Height, Width]
    into the output matrix with a shape of [Height x Width / size, size],
    where size is the parameter of this layer indicating the output dimension.

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    :param input: The input of this layer.
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    :type input: LayerOutput.
    :param name: The name of this layer. It is optional.
    :type name: basestring
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    :param size: The resized output dimension of this layer.
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    :type size: int
    :return: A LayerOutput object.
    :rtype: LayerOutput
    """
    Layer(name=name, type=LayerType.RESIZE, inputs=Input(input.name), size=size)
    return LayerOutput(name, LayerType.RESIZE, parents=[input], size=input.size)
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@wrap_act_default(act=LinearActivation())
@wrap_name_default('sub_seq')
def sub_seq_layer(input, offsets, sizes, act=None, bias_attr=None, name=None):
    """
    sub_seq_layer will return sub-sequences from the input sequences. For each
    sequence in the input sequence layer, sub_seq_layer will slice it by given
    offset and size. Please notice that, number of offset value and size value
    both are equal to the number of sequence in the input layer.

    .. code-block:: python

        sub_seq = sub_seq_layer(input=input_seq, offsets=offsets, sizes=sizes)

    :param name: The name of this layer. It is optional.
    :type name: basestring
    :param input: The input of this layer, which should be sequence.
    :type input: LayerOutput
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    :param offsets: The offset indices to slice the input sequence, which should
                    be sequence type.
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    :type offsets: LayerOutput
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    :param sizes: The sizes of the sub-sequences, which should be sequence type.
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    :type sizes: LayerOutput
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    :param act: Activation type, LinearActivation is the default activation.
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    :type act: BaseActivation.
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    :param bias_attr: The bias attribute. If the parameter is set to False or an object
                      whose type is not ParameterAttribute, no bias is defined. If the
                      parameter is set to True, the bias is initialized to zero.
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    :type bias_attr: ParameterAttribute | None | bool | Any
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    assert isinstance(input, LayerOutput), (
        'The first input of sub_seq_layer layer must be a PaddlePaddle layer.')
    assert isinstance(offsets, LayerOutput), (
        'The offset indices for sub_seq_layer, '
        'must be a PaddlePaddle layer.')
    assert isinstance(sizes, LayerOutput), (
        'The sizes of sub-sequences, must be a PaddlePaddle layer.')

    Layer(
        name=name,
        type=LayerType.SUB_SEQ_LAYER,
        inputs=[input.name, offsets.name, sizes.name],
        active_type=act.name,
        bias=ParamAttr.to_bias(bias_attr))

    return LayerOutput(
        name,
        LayerType.SUB_SEQ_LAYER,
        parents=[input, offsets, sizes],
        size=input.size)
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@wrap_name_default('scale_sub_region')
def scale_sub_region_layer(input, indices, value, name=None):
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    """
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    Given an image or feature map with CHW information, scale_sub_region_layer
    can be used to multiply a real value to values of a sub continuous region.
    You can provide start and end indices of CHW for each instance.
    Please notice that all start indices are counting from 1.
    The shape of indices should be [batch_size, 6] and the layout for each row
    is [C_Start, C_End, H_Start, H_End, W_Start, W_End].
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    .. code-block:: python

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        scale_sub_region = scale_sub_region_layer(input=input,
                                                  indices=indices,
                                                  value=value)
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    :param name: The name of this layer. It is optional.
    :type name: basestring
    :param input: The input of this layer which should contains CHW information.
    :type input: LayerOutput
    :param indices: Start index and end index for C H W, the input value should
                    be a 2-D matrix with shape [batch_size, 6].
    :type indices: LayerOutput.
    :param value: value to multiply.
    :type value: float
    :return: LayerOutput object.
    :rtype: LayerOutput
    """

    assert isinstance(input, LayerOutput), (
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        'The first input of scale_sub_region_layer, '
        'must be a PaddlePaddle layer.')
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    assert isinstance(indices, LayerOutput), (
        'The start and end indices for CHW, must be a PaddlePaddle layer.')
    assert isinstance(value, float), (
        'The value to multiply, must be a real value.')

    Layer(
        name=name,
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        type=LayerType.SCALE_SUB_REGION_LAYER,
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        inputs=[input.name, indices.name],
        value=value)

    return LayerOutput(
        name,
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        LayerType.SCALE_SUB_REGION_LAYER,
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        parents=[input, indices],
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        num_filters=input.num_filters,
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        size=input.size)
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@wrap_name_default()
@wrap_act_default(act=LinearActivation())
@wrap_param_attr_default()
@layer_support()
def factorization_machine(input,
                          factor_size,
                          act=None,
                          name=None,
                          param_attr=None,
                          layer_attr=None):
    """
    The Factorization Machine models pairwise feature interactions as inner
    product of the learned latent vectors corresponding to each input feature.
    The Factorization Machine can effectively capture feature interactions
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    especially when the input is sparse.

    This implementation only consider the 2-order feature interactions using
    Factorization Machine with the formula:

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    .. math::
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        y = \sum_{i=1}^{n-1}\sum_{j=i+1}^n\langle v_i, v_j \\rangle x_i x_j
7479

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    Note:
        X is the input vector with size n. V is the factor matrix. Each row of V
        is the latent vector corresponding to each input dimesion. The size of
        each latent vector is k.
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    For details of Factorization Machine, please refer to the paper:
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    Factorization machines.
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    .. code-block:: python
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        first_order = paddle.layer.fc(input=input,
                                      size=1,
                                      act=paddle.activation.Linear())
        second_order = paddle.layer.factorization_machine(input=input,
                                                          factor_size=10)
        fm = paddle.layer.addto(input=[first_order, second_order],
                                act=paddle.activation.Linear(),
                                bias_attr=False)

    :param input: The input layer. Supported input types: all input data types
                  on CPU, and only dense input types on GPU.
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    :type input: LayerOutput
    :param factor_size: The hyperparameter that defines the dimensionality of
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                        the latent vector size.
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    :type context_len: int
    :param act: Activation Type. Default is linear activation.
    :type act: BaseActivation
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    :param param_attr: The parameter attribute. See ParameterAttribute for
                       details.
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    :type param_attr: ParameterAttribute
    :param layer_attr: Extra Layer config.
    :type layer_attr: ExtraLayerAttribute|None
    :return: LayerOutput object.
    :rtype: LayerOutput
    """
    assert isinstance(input, LayerOutput)
    assert factor_size > 0, "the factor_size must be greater than 0."

    Layer(
        inputs=[Input(input.name, **param_attr.attr)],
        name=name,
        factor_size=factor_size,
        type=LayerType.FACTORIZATION_MACHINE,
        active_type=act.name,
        **ExtraLayerAttribute.to_kwargs(layer_attr))
    return LayerOutput(
        name, LayerType.FACTORIZATION_MACHINE, input, activation=act, size=1)