提交 a6c85dd6 编写于 作者: M mindspore-ci-bot 提交者: Gitee

!1221 support vm for BNTrainingUpdateV2

Merge pull request !1221 from jiangjinsheng/bn_training_update_v2
......@@ -52,6 +52,7 @@ static std::map<string, string> tbe_func_adapter_map = {
{"batch_mat_mul", "batch_matmul"},
{"b_n_training_reduce", "bn_training_reduce"},
{"b_n_training_update", "bn_training_update"},
{"b_n_training_update_v2", "bn_training_update_v2"},
{"b_n_training_reduce_grad", "bn_training_reduce_grad"},
{"b_n_training_update_grad", "bn_training_update_grad"},
{"b_n_infer", "bn_infer"},
......
......@@ -179,3 +179,4 @@ from .nms_with_mask import nms_with_mask_op_info
from .random_choice_with_mask import random_choice_with_mask_op_info
from .sgd import sgd_op_info
from .lars_update import lars_update_op_info
from .bn_training_update_v2 import _bn_training_update_v2_tbe
# Copyright 2020 Huawei Technologies Co., Ltd
#
# 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.
# ============================================================================
"""BNTrainingUpdateV2 op"""
from mindspore.ops.op_info_register import op_info_register, TBERegOp, DataType
bn_training_update_v2_op_info = TBERegOp("BNTrainingUpdateV2") \
.fusion_type("OPAQUE") \
.async_flag(False) \
.binfile_name("bn_training_update_v2.so") \
.compute_cost(10) \
.kernel_name("bn_training_update_v2") \
.partial_flag(True) \
.attr("epsilon", "required", "float", "all") \
.input(0, "x", False, "required", "all", reshape_type="NC") \
.input(1, "sum", False, "required", "all") \
.input(2, "square_sum", False, "required", "all") \
.input(3, "scale", False, "required", "all") \
.input(4, "offset", False, "required", "all") \
.output(0, "y", False, "required", "all", reshape_type="NC") \
.output(1, "batch_mean", False, "required", "all") \
.output(2, "batch_variance", False, "required", "all") \
.dtype_format(DataType.F16_5HD, DataType.F32_5HD, DataType.F32_5HD,
DataType.F32_5HD, DataType.F32_5HD, DataType.F16_5HD,
DataType.F32_5HD, DataType.F32_5HD) \
.dtype_format(DataType.F32_5HD, DataType.F32_5HD, DataType.F32_5HD,
DataType.F32_5HD, DataType.F32_5HD, DataType.F32_5HD,
DataType.F32_5HD, DataType.F32_5HD) \
.get_op_info()
@op_info_register(bn_training_update_v2_op_info)
def _bn_training_update_v2_tbe():
"""BNTrainingUpdateV2 TBE register"""
return
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