test_fusion_lstm_op.py 5.3 KB
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#   Copyright (c) 2018 PaddlePaddle Authors. All Rights Reserved.
#
# 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.

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from __future__ import print_function

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import unittest
import numpy as np
from op_test import OpTest
from test_lstm_op import lstm, ACTIVATION


def fc(x, w, b):
    return np.dot(x, w) + b


def fusion_lstm(
        x,  # T x M
        lod,  # 1 x N
        wx=None,  # M x 4D
        bx=None,  # 1 x 4D
        h0=None,  # N x D
        c0=None,  # N x D
        w_h=None,  # D x 4D
        w_b=None,  # 1 x 4D
        w_c=None,  # 1 x 3D
        is_reverse=False,
        act_gate=None,
        act_cell=None,
        act_cand=None):
    return lstm(
        fc(x, wx, bx), lod, h0, c0, w_h, w_b, w_c, is_reverse, act_gate,
        act_cell, act_cand)


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class TestFusionLSTMOp(OpTest):
    def set_conf(self):
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        pass
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    def setUp(self):
        self.op_type = 'fusion_lstm'
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        self.lod = [[2, 3, 5, 4]]
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        self.M = 8
        self.D = 16
        self.has_initial_state = False
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        self.use_peepholes = False
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        self.is_reverse = False
        self.act_gate = 'sigmoid'
        self.act_cell = 'tanh'
        self.act_cand = 'tanh'
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        self.set_conf()
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        T = sum(self.lod[0])
        bs = len(self.lod[0])

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        x = np.random.normal(size=(T, self.M)).astype('float32')
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        if self.has_initial_state:
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            h0 = np.random.normal(size=(bs, self.D)).astype('float32')
            c0 = np.random.normal(size=(bs, self.D)).astype('float32')
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        else:
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            h0 = np.zeros((bs, self.D)).astype('float32')
            c0 = np.zeros((bs, self.D)).astype('float32')
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        wh = np.random.normal(size=(self.D, 4 * self.D)).astype('float32')
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        if self.use_peepholes:
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            b = np.random.normal(size=(1, 7 * self.D)).astype('float32')
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        else:
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            b = np.random.normal(size=(1, 4 * self.D)).astype('float32')
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        w_b = np.copy(b[:, 0:4 * self.D])
        w_c = b[:, 4 * self.D:] if self.use_peepholes else None

        # this is the weight of fc
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        wx = np.random.normal(size=(self.M, 4 * self.D)).astype('float32')
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        # this is the bias of fc
        # and it should be manually added into the bias of this fusion LSTM
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        bx = np.random.normal(size=(1, 4 * self.D)).astype('float32')
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        b[0, 0:4 * self.D] += bx[0, :]
        h, c = fusion_lstm(x, self.lod, wx, bx, h0, c0, wh, w_b, w_c,
                           self.is_reverse, ACTIVATION[self.act_gate],
                           ACTIVATION[self.act_cell], ACTIVATION[self.act_cand])

        self.inputs = {
            'X': (x, self.lod),
            'WeightX': wx,
            'WeightH': wh,
            'Bias': b
        }

        if self.has_initial_state:
            self.inputs['H0'] = h0
            self.inputs['C0'] = c0

        self.outputs = {
            'Hidden': (h, self.lod),
            'Cell': (c, self.lod),
        }
        self.attrs = {
            'use_peepholes': self.use_peepholes,
            'is_reverse': self.is_reverse,
            'gate_activation': self.act_gate,
            'cell_activation': self.act_cell,
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            'candidate_activation': self.act_cand
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        }

    def test_check_output(self):
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        for use_seq in {True, False}:
            self.attrs['use_seq'] = use_seq
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            self.check_output(check_dygraph=False)
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class TestFusionLSTMOpInit(TestFusionLSTMOp):
    def set_conf(self):
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        self.has_initial_state = True


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class TestFusionLSTMOpReverse(TestFusionLSTMOp):
    def set_conf(self):
        self.is_reverse = True


class TestFusionLSTMOpInitReverse(TestFusionLSTMOp):
    def set_conf(self):
        self.has_initial_state = True
        self.is_reverse = True
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class TestFusionLSTMOpMD1(TestFusionLSTMOp):
    def set_conf(self):
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        self.M = 36
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        self.D = 8


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class TestFusionLSTMOpMD2(TestFusionLSTMOp):
    def set_conf(self):
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        self.M = 8
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        self.D = 8


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class TestFusionLSTMOpMD3(TestFusionLSTMOp):
    def set_conf(self):
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        self.M = 15
        self.D = 3


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class TestFusionLSTMOpBS1(TestFusionLSTMOp):
    def set_conf(self):
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        self.lod = [[3]]
        self.D = 16


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class TestFusionLSTMOpPeepholes(TestFusionLSTMOp):
    def set_conf(self):
        self.use_peepholes = True


class TestFusionLSTMOpPeepholesInit(TestFusionLSTMOp):
    def set_conf(self):
        self.use_peepholes = True
        self.has_initial_state = True


class TestFusionLSTMOpPeepholesReverse(TestFusionLSTMOp):
    def set_conf(self):
        self.use_peepholes = True
        self.is_reverse = True


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class TestFusionLSTMOpPeepholesInitReverse(TestFusionLSTMOp):
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    def set_conf(self):
        self.use_peepholes = True
        self.has_initial_state = True
        self.is_reverse = True


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class TestFusionLSTMOpPeepholesBS1(TestFusionLSTMOp):
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    def set_conf(self):
        self.use_peepholes = True
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        self.lod = [[2]]
        self.D = 8
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if __name__ == '__main__':
    unittest.main()