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528 lines
18 KiB
528 lines
18 KiB
# Copyright 2019 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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import numpy as np
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import mindspore as ms
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import mindspore.nn as nn
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from mindspore import Parameter, Tensor, context
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from mindspore.common.api import _executor
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from mindspore.ops import composite as C
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from mindspore.ops import operations as P
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from tests.ut.python.ops.test_math_ops import VirtualLoss
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class NetWithLoss(nn.Cell):
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def __init__(self, network):
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super(NetWithLoss, self).__init__()
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self.loss = VirtualLoss()
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self.network = network
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def construct(self, x, y, b):
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predict = self.network(x, y, b)
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return self.loss(predict)
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class GradWrap(nn.Cell):
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def __init__(self, network):
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super(GradWrap, self).__init__()
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self.network = network
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def construct(self, x, y, b):
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return C.grad_all(self.network)(x, y, b)
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def compile_net(net, x, y, b):
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net.set_auto_parallel()
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_executor.compile(net, x, y, b)
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def test_matmul_sub():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.sub = P.Sub().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.sub(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (4, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_add():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.add = P.TensorAdd().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.add(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (4, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_mul():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.mul = P.Mul().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.mul(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (4, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_div():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.div = P.Div().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.div(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (4, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_greater():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.greater = P.Greater().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.greater(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (4, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_add_broadcast():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.add = P.TensorAdd().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.add(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (2,))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_add_broadcast2():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.add = P.TensorAdd().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.add(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 4), (4, 1))
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strategy2 = ((4, 1), (1, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 1]), dtype=ms.float32)
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b = Tensor(np.ones([1, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_sub_broadcast():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.sub = P.Sub().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.sub(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (2,))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_sub_broadcast2():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.sub = P.Sub().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.sub(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 4), (4, 1))
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strategy2 = ((4, 1), (1, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 1]), dtype=ms.float32)
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b = Tensor(np.ones([1, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_mul_broadcast():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.mul = P.Mul().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.mul(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (2,))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_mul_broadcast2():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.mul = P.Mul().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.mul(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 4), (4, 1))
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strategy2 = ((4, 1), (1, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 1]), dtype=ms.float32)
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b = Tensor(np.ones([1, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_div_broadcast():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.div = P.Div().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.div(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (2,))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_div_broadcast2():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.div = P.Div().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.div(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 4), (4, 1))
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strategy2 = ((4, 1), (1, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 1]), dtype=ms.float32)
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b = Tensor(np.ones([1, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_greater_broadcast():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.greater = P.Greater().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.greater(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (2,))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_greater_broadcast2():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.greater = P.Greater().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.greater(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 4), (4, 1))
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strategy2 = ((4, 1), (1, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 1]), dtype=ms.float32)
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b = Tensor(np.ones([1, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_floordiv():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.floordiv = P.FloorDiv().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.floordiv(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (4, 2))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
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context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64, 64]), dtype=ms.float32)
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compile_net(net, x, y, b)
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def test_matmul_floordiv_broadcast():
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class Net(nn.Cell):
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def __init__(self, strategy1, strategy2):
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super().__init__()
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self.matmul = P.MatMul().set_strategy(strategy1)
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self.floordiv = P.FloorDiv().set_strategy(strategy2)
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def construct(self, x, y, b):
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out = self.matmul(x, y)
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out = self.floordiv(out, b)
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return out
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context.set_auto_parallel_context(device_num=8, global_rank=0)
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strategy1 = ((2, 2), (2, 2))
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strategy2 = ((4, 2), (2,))
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net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
|
|
context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
|
|
|
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x = Tensor(np.ones([64, 32]), dtype=ms.float32)
|
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y = Tensor(np.ones([32, 64]), dtype=ms.float32)
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b = Tensor(np.ones([64]), dtype=ms.float32)
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compile_net(net, x, y, b)
|
|
|
|
|
|
def test_matmul_floordiv_broadcast2():
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|
class Net(nn.Cell):
|
|
def __init__(self, strategy1, strategy2):
|
|
super().__init__()
|
|
self.matmul = P.MatMul().set_strategy(strategy1)
|
|
self.floordiv = P.FloorDiv().set_strategy(strategy2)
|
|
|
|
def construct(self, x, y, b):
|
|
out = self.matmul(x, y)
|
|
out = self.floordiv(out, b)
|
|
return out
|
|
|
|
context.set_auto_parallel_context(device_num=8, global_rank=0)
|
|
strategy1 = ((2, 4), (4, 1))
|
|
strategy2 = ((4, 1), (1, 2))
|
|
net = GradWrap(NetWithLoss(Net(strategy1, strategy2)))
|
|
context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
|
|
|
|
x = Tensor(np.ones([64, 32]), dtype=ms.float32)
|
|
y = Tensor(np.ones([32, 1]), dtype=ms.float32)
|
|
b = Tensor(np.ones([1, 64]), dtype=ms.float32)
|
|
compile_net(net, x, y, b)
|
|
|
|
|
|
def test_assign_sub():
|
|
class Net(nn.Cell):
|
|
def __init__(self):
|
|
super().__init__()
|
|
self.assign_sub = P.AssignSub()
|
|
self.mul = P.Mul()
|
|
self.mul_weight = Parameter(Tensor(np.full([128, 32],
|
|
0.5, dtype=np.float32)),
|
|
name="mul_weight")
|
|
self.assignsub_weight = Parameter(Tensor(np.full([128, 32],
|
|
1.1, dtype=np.float32)),
|
|
name="assignsub_weight")
|
|
|
|
def construct(self, x):
|
|
out = self.mul(x, self.mul_weight)
|
|
out = self.assign_sub(self.assignsub_weight, out)
|
|
return out
|
|
|
|
class SubNetWithLoss(nn.Cell):
|
|
def __init__(self, network):
|
|
super(SubNetWithLoss, self).__init__()
|
|
self.loss = VirtualLoss()
|
|
self.network = network
|
|
|
|
def construct(self, x):
|
|
predict = self.network(x,)
|
|
return self.loss(predict)
|
|
|
|
class SubGradWrap(nn.Cell):
|
|
def __init__(self, network):
|
|
super(SubGradWrap, self).__init__()
|
|
self.network = network
|
|
|
|
def construct(self, x):
|
|
return C.grad_all(self.network)(x)
|
|
|
|
def compile_sub_net(net, x):
|
|
net.set_auto_parallel()
|
|
_executor.compile(net, x)
|
|
|
|
context.set_auto_parallel_context(device_num=64, global_rank=15)
|
|
context.set_auto_parallel_context(parallel_mode="semi_auto_parallel")
|
|
net = SubGradWrap(SubNetWithLoss(Net()))
|
|
x = Tensor(np.ones([128, 32]), dtype=ms.float32)
|
|
compile_sub_net(net, x)
|