forked from huawei/mindspore2022
376 lines
13 KiB
Python
376 lines
13 KiB
Python
# Copyright 2021 Huawei Technologies Co., Ltd
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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# ============================================================================
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import numpy as np
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import pytest
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import mindspore as ms
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from mindspore import context, Tensor, Parameter
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from mindspore.nn import Cell, Momentum
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from mindspore.ops import operations as P
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from mindspore.train import Model
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from tests.dataset_mock import MindData
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class Dataset(MindData):
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def __init__(self, predict, label, length=3):
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super(Dataset, self).__init__(size=length)
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self.predict = predict
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self.label = label
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self.index = 0
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self.length = length
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def __iter__(self):
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return self
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def __next__(self):
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if self.index >= self.length:
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raise StopIteration
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self.index += 1
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return self.predict, self.label
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def reset(self):
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self.index = 0
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class Net(Cell):
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def __init__(self, w1_shape, indices_shape, strategy1=None, strategy2=None, strategy3=None):
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super().__init__()
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self.mul = P.Mul().shard(strategy1)
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self.w1 = Parameter(Tensor(np.ones(w1_shape), dtype=ms.float32), "w1")
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self.indices = Tensor(np.ones(indices_shape), dtype=ms.int32)
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self.gathernd = P.GatherNd().shard(strategy2)
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self.relu = P.ReLU().shard(strategy3)
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def construct(self, x, b):
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out = self.mul(x, self.w1)
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out = self.gathernd(out, self.indices)
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out = self.relu(out)
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return out
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class Net2(Cell):
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def __init__(self, w1_shape, indices_shape, strategy1=None, strategy2=None, strategy3=None):
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super().__init__()
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self.mul = P.Mul().shard(strategy1)
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self.w1 = Parameter(Tensor(np.ones(w1_shape), dtype=ms.float32), "w1")
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self.indices = Tensor(np.ones(indices_shape), dtype=ms.int32)
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self.gathernd = P.GatherNd().shard(strategy2)
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self.relu = P.ReLU().shard(strategy3)
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def construct(self, x, b):
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out = self.mul(x, self.w1)
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out = self.gathernd(out, self.indices)
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return out
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class Net3(Cell):
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def __init__(self, w1_shape, indices_shape, strategy1=None, strategy2=None, strategy3=None):
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super().__init__()
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self.mul = P.Mul().shard(strategy1)
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self.w1 = Parameter(Tensor(np.ones(w1_shape), dtype=ms.float32), "w1")
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self.indices = Tensor(np.ones(indices_shape), dtype=ms.int32)
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self.gathernd = P.GatherNd().shard(strategy2)
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self.relu = P.ReLU().shard(strategy3)
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def construct(self, x, b):
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out = self.gathernd(x, self.indices)
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out = self.relu(out)
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out = self.mul(out, self.w1)
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return out
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# full_batch = false
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_x = Tensor(np.ones([1, 16, 32]), dtype=ms.float32)
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_b = Tensor(np.ones([1, 16, 32]), dtype=ms.float32)
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def compile_net(net):
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learning_rate = 0.1
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momentum = 0.9
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epoch_size = 2
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dataset = Dataset(_x, _b)
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opt = Momentum(net.trainable_params(), learning_rate, momentum)
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model = Model(net, optimizer=opt)
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model.train(epoch_size, dataset, dataset_sink_mode=False)
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context.reset_auto_parallel_context()
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def test_gathernd_data_parallel():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 1]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel2():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 2]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel3():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel4():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 1]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1, 1, 1),)
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net = Net2(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel5():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 2]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1, 1),)
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net = Net2(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel6():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1),)
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net = Net2(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel7():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 4, 2, 16, 32]
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indices_shape = [8, 4, 2, 1]
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strategy1 = ((8, 1, 1, 1, 1), (8, 1, 1, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1, 1, 1),)
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net = Net3(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel8():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 4, 2, 32]
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indices_shape = [8, 4, 2, 2]
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strategy1 = ((8, 1, 1, 1), (8, 1, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1, 1),)
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net = Net3(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_data_parallel9():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 4, 2]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (8, 1, 1, 1))
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strategy3 = ((8, 1, 1),)
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net = Net3(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 1]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel2():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 2]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel3():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel4():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 1]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1, 1, 1),)
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net = Net2(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel5():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 2]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1, 1),)
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net = Net2(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel6():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1),)
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net = Net2(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel7():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 4, 2, 16, 32]
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indices_shape = [8, 4, 2, 1]
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strategy1 = ((8, 1, 1, 1, 1), (8, 1, 1, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1, 1, 1),)
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net = Net3(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel8():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 4, 2, 32]
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indices_shape = [8, 4, 2, 2]
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strategy1 = ((8, 1, 1, 1), (8, 1, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1, 1),)
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net = Net3(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_model_parallel9():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 4, 2]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (2, 2, 2, 1))
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strategy3 = ((8, 1, 1),)
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net = Net3(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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compile_net(net)
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def test_gathernd_auto_parallel():
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context.set_auto_parallel_context(
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parallel_mode="auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 1]
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net = Net(w1_shape, indices_shape)
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compile_net(net)
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def test_gathernd_auto_parallel2():
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context.set_auto_parallel_context(
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parallel_mode="auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 2]
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net = Net(w1_shape, indices_shape)
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compile_net(net)
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def test_gathernd_auto_parallel3():
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context.set_auto_parallel_context(
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parallel_mode="auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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net = Net(w1_shape, indices_shape)
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compile_net(net)
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def test_gathernd_strategy_error():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((2, 1, 1), (1, 2, 2, 1))
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strategy3 = ((8, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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with pytest.raises(RuntimeError):
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compile_net(net)
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def test_gathernd_strategy_error2():
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context.set_auto_parallel_context(
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parallel_mode="semi_auto_parallel", device_num=8, global_rank=0)
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w1_shape = [8, 16, 32]
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indices_shape = [8, 4, 2, 3]
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strategy1 = ((8, 1, 1), (8, 1, 1))
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strategy2 = ((1, 1, 1), (1, 2, 2, 2))
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strategy3 = ((8, 1, 1),)
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net = Net(w1_shape, indices_shape, strategy1, strategy2, strategy3)
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with pytest.raises(RuntimeError):
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compile_net(net)
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