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dd0a07f2
编写于
7月 18, 2022
作者:
X
Xiaoxu Chen
提交者:
GitHub
7月 18, 2022
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差异文件
fix new autodiff api docs (#44341)
上级
3f70b1d3
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1
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1 changed file
with
15 addition
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11 deletion
+15
-11
python/paddle/incubate/autograd/primapi.py
python/paddle/incubate/autograd/primapi.py
+15
-11
未找到文件。
python/paddle/incubate/autograd/primapi.py
浏览文件 @
dd0a07f2
...
@@ -26,14 +26,14 @@ def forward_grad(outputs, inputs, grad_inputs=None):
...
@@ -26,14 +26,14 @@ def forward_grad(outputs, inputs, grad_inputs=None):
**ONLY available in the static mode and primitive operators.**
**ONLY available in the static mode and primitive operators.**
Args:
Args:
outputs
: The output tensor or tensors
outputs
(Tensor|Sequence[Tensor]): The output tensor or tensors.
inputs
: The input tensor or tensors
inputs
(Tensor|Sequence[Tensor]): The input tensor or tensors.
grad_inputs
: The gradient Tensor or Tensors of inputs which has
grad_inputs
(Tensor|Sequence[Tensor]): Optional, the gradient Tensor or
the same shape with inputs, Defaults to None, in this case is
Tensors of inputs which has the same shape with inputs, Defaults to
equivalent to all ones
.
None, in this case is equivalent to all ones
.
Returns:
Returns:
grad_outputs
(Tensor|Sequence[Tensor]): The gradients for outputs.
grad_outputs(Tensor|Sequence[Tensor]): The gradients for outputs.
Examples:
Examples:
...
@@ -99,14 +99,14 @@ def grad(outputs, inputs, grad_outputs=None):
...
@@ -99,14 +99,14 @@ def grad(outputs, inputs, grad_outputs=None):
**ONLY available in the static mode and primitive operators**
**ONLY available in the static mode and primitive operators**
Args:
Args:
outputs
(Tensor|Sequence[Tensor]): The output Tensor or Tensors.
outputs(Tensor|Sequence[Tensor]): The output Tensor or Tensors.
inputs
(Tensor|Sequence[Tensor]): The input Tensor or Tensors.
inputs(Tensor|Sequence[Tensor]): The input Tensor or Tensors.
grad_outputs
(Tensor|Sequence[Tensor]): T
he gradient Tensor or
grad_outputs
(Tensor|Sequence[Tensor]): Optional, t
he gradient Tensor or
Tensors of outputs which has the same shape with outputs, Defaults
Tensors of outputs which has the same shape with outputs, Defaults
to None, in this case is equivalent to all ones
.
to None, in this case is equivalent to all ones.
Returns:
Returns:
grad_inputs
(Tensor|Tensors): The gradients for inputs.
grad_inputs(Tensor|Tensors): The gradients for inputs.
Examples:
Examples:
...
@@ -114,8 +114,10 @@ def grad(outputs, inputs, grad_outputs=None):
...
@@ -114,8 +114,10 @@ def grad(outputs, inputs, grad_outputs=None):
import numpy as np
import numpy as np
import paddle
import paddle
paddle.enable_static()
paddle.enable_static()
paddle.incubate.autograd.enable_prim()
paddle.incubate.autograd.enable_prim()
startup_program = paddle.static.Program()
startup_program = paddle.static.Program()
main_program = paddle.static.Program()
main_program = paddle.static.Program()
with paddle.static.program_guard(main_program, startup_program):
with paddle.static.program_guard(main_program, startup_program):
...
@@ -124,11 +126,13 @@ def grad(outputs, inputs, grad_outputs=None):
...
@@ -124,11 +126,13 @@ def grad(outputs, inputs, grad_outputs=None):
y = x * x
y = x * x
x_grad = paddle.incubate.autograd.grad(y, x)
x_grad = paddle.incubate.autograd.grad(y, x)
paddle.incubate.autograd.prim2orig()
paddle.incubate.autograd.prim2orig()
exe = paddle.static.Executor()
exe = paddle.static.Executor()
exe.run(startup_program)
exe.run(startup_program)
x_grad = exe.run(main_program, feed={'x': np.array([2.]).astype('float32')}, fetch_list=[x_grad])
x_grad = exe.run(main_program, feed={'x': np.array([2.]).astype('float32')}, fetch_list=[x_grad])
print(x_grad)
print(x_grad)
# [array([4.], dtype=float32)]
# [array([4.], dtype=float32)]
paddle.incubate.autograd.disable_prim()
paddle.incubate.autograd.disable_prim()
paddle.disable_static()
paddle.disable_static()
"""
"""
...
...
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