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8388abe6
编写于
11月 29, 2020
作者:
Z
zhang wenhui
提交者:
GitHub
11月 29, 2020
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差异文件
Fix api 1128 (#29174)
* fix 2.0 api, test=develop * fix api, test=develop
上级
f92fdfb8
变更
3
隐藏空白更改
内联
并排
Showing
3 changed file
with
13 addition
and
23 deletion
+13
-23
python/paddle/nn/functional/norm.py
python/paddle/nn/functional/norm.py
+3
-6
python/paddle/nn/layer/norm.py
python/paddle/nn/layer/norm.py
+8
-14
python/paddle/optimizer/adagrad.py
python/paddle/optimizer/adagrad.py
+2
-3
未找到文件。
python/paddle/nn/functional/norm.py
浏览文件 @
8388abe6
...
@@ -150,7 +150,6 @@ def batch_norm(x,
...
@@ -150,7 +150,6 @@ def batch_norm(x,
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
x = np.random.seed(123)
x = np.random.seed(123)
x = np.random.random(size=(2, 1, 2, 3)).astype('float32')
x = np.random.random(size=(2, 1, 2, 3)).astype('float32')
running_mean = np.random.random(size=1).astype('float32')
running_mean = np.random.random(size=1).astype('float32')
...
@@ -163,7 +162,7 @@ def batch_norm(x,
...
@@ -163,7 +162,7 @@ def batch_norm(x,
w = paddle.to_tensor(weight_data)
w = paddle.to_tensor(weight_data)
b = paddle.to_tensor(bias_data)
b = paddle.to_tensor(bias_data)
batch_norm_out = paddle.nn.functional.batch_norm(x, rm, rv, w, b)
batch_norm_out = paddle.nn.functional.batch_norm(x, rm, rv, w, b)
print(batch_norm_out
.numpy()
)
print(batch_norm_out)
"""
"""
assert
len
(
x
.
shape
)
>=
2
,
"input dim must be larger than 1"
assert
len
(
x
.
shape
)
>=
2
,
"input dim must be larger than 1"
...
@@ -269,14 +268,13 @@ def layer_norm(x,
...
@@ -269,14 +268,13 @@ def layer_norm(x,
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
layer_norm = paddle.nn.functional.layer_norm(x, x.shape[1:])
layer_norm = paddle.nn.functional.layer_norm(x, x.shape[1:])
layer_norm_out = layer_norm(x)
layer_norm_out = layer_norm(x)
print(layer_norm_out
.numpy()
)
print(layer_norm_out)
"""
"""
input_shape
=
list
(
x
.
shape
)
input_shape
=
list
(
x
.
shape
)
input_ndim
=
len
(
input_shape
)
input_ndim
=
len
(
input_shape
)
...
@@ -362,13 +360,12 @@ def instance_norm(x,
...
@@ -362,13 +360,12 @@ def instance_norm(x,
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
instance_norm_out = paddle.nn.functional.instancenorm(x)
instance_norm_out = paddle.nn.functional.instancenorm(x)
print(instance_norm_out
.numpy()
)
print(instance_norm_out)
"""
"""
...
...
python/paddle/nn/layer/norm.py
浏览文件 @
8388abe6
...
@@ -163,14 +163,13 @@ class InstanceNorm1D(_InstanceNormBase):
...
@@ -163,14 +163,13 @@ class InstanceNorm1D(_InstanceNormBase):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
instance_norm = paddle.nn.InstanceNorm1D(2)
instance_norm = paddle.nn.InstanceNorm1D(2)
instance_norm_out = instance_norm(x)
instance_norm_out = instance_norm(x)
print(instance_norm_out
.numpy()
)
print(instance_norm_out)
"""
"""
...
@@ -235,14 +234,13 @@ class InstanceNorm2D(_InstanceNormBase):
...
@@ -235,14 +234,13 @@ class InstanceNorm2D(_InstanceNormBase):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
instance_norm = paddle.nn.InstanceNorm2D(2)
instance_norm = paddle.nn.InstanceNorm2D(2)
instance_norm_out = instance_norm(x)
instance_norm_out = instance_norm(x)
print(instance_norm_out
.numpy()
)
print(instance_norm_out)
"""
"""
def
_check_input_dim
(
self
,
input
):
def
_check_input_dim
(
self
,
input
):
...
@@ -306,14 +304,13 @@ class InstanceNorm3D(_InstanceNormBase):
...
@@ -306,14 +304,13 @@ class InstanceNorm3D(_InstanceNormBase):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 2, 2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 2, 2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
instance_norm = paddle.nn.InstanceNorm3D(2)
instance_norm = paddle.nn.InstanceNorm3D(2)
instance_norm_out = instance_norm(x)
instance_norm_out = instance_norm(x)
print(instance_norm_out.numpy
()
)
print(instance_norm_out.numpy)
"""
"""
def
_check_input_dim
(
self
,
input
):
def
_check_input_dim
(
self
,
input
):
...
@@ -352,6 +349,7 @@ class GroupNorm(layers.Layer):
...
@@ -352,6 +349,7 @@ class GroupNorm(layers.Layer):
Examples:
Examples:
.. code-block:: python
.. code-block:: python
import paddle
import paddle
import numpy as np
import numpy as np
...
@@ -492,14 +490,13 @@ class LayerNorm(layers.Layer):
...
@@ -492,14 +490,13 @@ class LayerNorm(layers.Layer):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
layer_norm = paddle.nn.LayerNorm(x_data.shape[1:])
layer_norm = paddle.nn.LayerNorm(x_data.shape[1:])
layer_norm_out = layer_norm(x)
layer_norm_out = layer_norm(x)
print(layer_norm_out
.numpy()
)
print(layer_norm_out)
"""
"""
def
__init__
(
self
,
def
__init__
(
self
,
...
@@ -714,14 +711,13 @@ class BatchNorm1D(_BatchNormBase):
...
@@ -714,14 +711,13 @@ class BatchNorm1D(_BatchNormBase):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 1, 3)).astype('float32')
x_data = np.random.random(size=(2, 1, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
batch_norm = paddle.nn.BatchNorm1D(1)
batch_norm = paddle.nn.BatchNorm1D(1)
batch_norm_out = batch_norm(x)
batch_norm_out = batch_norm(x)
print(batch_norm_out
.numpy()
)
print(batch_norm_out)
"""
"""
def
_check_data_format
(
self
,
input
):
def
_check_data_format
(
self
,
input
):
...
@@ -804,14 +800,13 @@ class BatchNorm2D(_BatchNormBase):
...
@@ -804,14 +800,13 @@ class BatchNorm2D(_BatchNormBase):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 1, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 1, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
batch_norm = paddle.nn.BatchNorm2D(1)
batch_norm = paddle.nn.BatchNorm2D(1)
batch_norm_out = batch_norm(x)
batch_norm_out = batch_norm(x)
print(batch_norm_out
.numpy()
)
print(batch_norm_out)
"""
"""
def
_check_data_format
(
self
,
input
):
def
_check_data_format
(
self
,
input
):
...
@@ -893,14 +888,13 @@ class BatchNorm3D(_BatchNormBase):
...
@@ -893,14 +888,13 @@ class BatchNorm3D(_BatchNormBase):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
np.random.seed(123)
np.random.seed(123)
x_data = np.random.random(size=(2, 1, 2, 2, 3)).astype('float32')
x_data = np.random.random(size=(2, 1, 2, 2, 3)).astype('float32')
x = paddle.to_tensor(x_data)
x = paddle.to_tensor(x_data)
batch_norm = paddle.nn.BatchNorm3D(1)
batch_norm = paddle.nn.BatchNorm3D(1)
batch_norm_out = batch_norm(x)
batch_norm_out = batch_norm(x)
print(batch_norm_out
.numpy()
)
print(batch_norm_out)
"""
"""
def
_check_data_format
(
self
,
input
):
def
_check_data_format
(
self
,
input
):
...
...
python/paddle/optimizer/adagrad.py
浏览文件 @
8388abe6
...
@@ -50,8 +50,8 @@ class Adagrad(Optimizer):
...
@@ -50,8 +50,8 @@ class Adagrad(Optimizer):
The default value is None in static mode, at this time all parameters will be updated.
The default value is None in static mode, at this time all parameters will be updated.
weight_decay (float|WeightDecayRegularizer, optional): The strategy of regularization. \
weight_decay (float|WeightDecayRegularizer, optional): The strategy of regularization. \
It canbe a float value as coeff of L2 regularization or \
It canbe a float value as coeff of L2 regularization or \
:ref:`api_
fluid_regularizer_L1Decay`, :ref:`api_fluid
_regularizer_L2Decay`.
:ref:`api_
paddle_regularizer_L1Decay`, :ref:`api_paddle
_regularizer_L2Decay`.
If a parameter has set regularizer using :ref:`api_
fluid_P
aramAttr` already, \
If a parameter has set regularizer using :ref:`api_
paddle_fluid_param_attr_
aramAttr` already, \
the regularization setting here in optimizer will be ignored for this parameter. \
the regularization setting here in optimizer will be ignored for this parameter. \
Otherwise, the regularization setting here in optimizer will take effect. \
Otherwise, the regularization setting here in optimizer will take effect. \
Default None, meaning there is no regularization.
Default None, meaning there is no regularization.
...
@@ -71,7 +71,6 @@ class Adagrad(Optimizer):
...
@@ -71,7 +71,6 @@ class Adagrad(Optimizer):
import paddle
import paddle
import numpy as np
import numpy as np
paddle.disable_static()
inp = paddle.rand(shape=[10, 10])
inp = paddle.rand(shape=[10, 10])
linear = paddle.nn.Linear(10, 10)
linear = paddle.nn.Linear(10, 10)
out = linear(inp)
out = linear(inp)
...
...
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