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a4742115
编写于
1月 08, 2018
作者:
P
peterzhang2029
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python/paddle/trainer_config_helpers/layers.py
python/paddle/trainer_config_helpers/layers.py
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python/paddle/trainer_config_helpers/layers.py
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...
@@ -2542,14 +2542,14 @@ def img_conv_layer(input,
...
@@ -2542,14 +2542,14 @@ def img_conv_layer(input,
what-are-deconvolutional-layers/>`_ .
what-are-deconvolutional-layers/>`_ .
The num_channel means input image's channel number. It may be 1 or 3 when
The num_channel means input image's channel number. It may be 1 or 3 when
input is raw pixels of image(mono or RGB), or it may be the previous layer's
input is raw pixels of image(mono or RGB), or it may be the previous layer's
num_filters
* num_group
.
num_filters.
There are several groups of filters in PaddlePaddle implementation.
There are several groups of filters in PaddlePaddle implementation.
Each group will process some channels of the input. For example, if
Each group will process some channels of the input. For example, if
num_channel = 256, group = 4, num_filter=32, the PaddlePaddle will create
num_channel = 256, group = 4, num_filter=32, the PaddlePaddle will create
32
*4 = 128 filters to process the input. The
channels will be split into 4
32
filters to process the input. The input
channels will be split into 4
pieces. First 256/4 = 64 channels will be processed by first 32
filters. The
pieces. First 256/4 = 64 channels will be processed by first 32
/4 = 8 filters.
rest channels will be processed by the rest groups of filters.
The
rest channels will be processed by the rest groups of filters.
The example usage is:
The example usage is:
...
@@ -2575,7 +2575,8 @@ def img_conv_layer(input,
...
@@ -2575,7 +2575,8 @@ def img_conv_layer(input,
:param filter_size_y: The dimension of the filter kernel on the y axis. If the parameter
:param filter_size_y: The dimension of the filter kernel on the y axis. If the parameter
is not set, it will be set automatically according to filter_size.
is not set, it will be set automatically according to filter_size.
:type filter_size_y: int
:type filter_size_y: int
:param num_filters: Each filter group's number of filter
:param num_filters: The number of filters. It is as same as the output image channel.
:type num_filters: int
:param act: Activation type. ReluActivation is the default activation.
:param act: Activation type. ReluActivation is the default activation.
:type act: BaseActivation
:type act: BaseActivation
:param groups: The group number. 1 is the default group number.
:param groups: The group number. 1 is the default group number.
...
@@ -7177,7 +7178,7 @@ def img_conv3d_layer(input,
...
@@ -7177,7 +7178,7 @@ def img_conv3d_layer(input,
:param filter_size: The dimensions of the filter kernel along three axises. If the parameter
:param filter_size: The dimensions of the filter kernel along three axises. If the parameter
is set to one integer, the three dimensions will be same.
is set to one integer, the three dimensions will be same.
:type filter_size: int | tuple | list
:type filter_size: int | tuple | list
:param num_filters: The number of filters
in each group
.
:param num_filters: The number of filters
. It is as same as the output image channel
.
:type num_filters: int
:type num_filters: int
:param act: Activation type. ReluActivation is the default activation.
:param act: Activation type. ReluActivation is the default activation.
:type act: BaseActivation
:type act: BaseActivation
...
...
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