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271532eb
编写于
4月 11, 2019
作者:
H
heqiaozhi
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python/paddle/fluid/layers/nn.py
python/paddle/fluid/layers/nn.py
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python/paddle/fluid/layers/nn.py
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@@ -11070,20 +11070,20 @@ def continuous_value_model(input, cvm, use_cvm=True):
**continuous_value_model layers**
continuous value mode
d(cvm). now, it only consider show and click value in ctr
project.
We assume that input is a embedding vector with cvm_feature, wh
ich shape is [N * D] (D is 2 + embedding dim)
if use_cvm is True,
we
will log(cvm_feature), and output shape is [N * D].
if use_cvm is False,
we
will remove cvm_feature from input, and output shape is [N * (D - 2)].
continuous value mode
l(cvm). Now, it only considers show and click value in CTR
project.
We assume that input is a embedding vector with cvm_feature, wh
ose shape is [N * D] (D is 2 + embedding dim).
if use_cvm is True,
it
will log(cvm_feature), and output shape is [N * D].
if use_cvm is False,
it
will remove cvm_feature from input, and output shape is [N * (D - 2)].
This layer accepts a tensor named input which is ID after embedded
and lod level is 1
, cvm is a show_click info.
This layer accepts a tensor named input which is ID after embedded
(lod level is 1)
, cvm is a show_click info.
Args:
input (Variable): a 2-D LodTensor with shape [N x D], where N is the batch size, D is 2 + the embedding dim. lod level = 1.
cvm (Variable): a 2-D Tensor with shape [N x 2], where N is the batch size, 2 is show and click.
use_cvm (bool): use cvm or not. if use cvm, the output dim is the same as input
if don't use cvm, the output dim is input dim - 2(remove show and click)
.
(cvm op is a customized op, which input is a sequence ha
d embedd_with_cvm default, so we need a
op named cvm to decided whever use it or not.)
if don't use cvm, the output dim is input dim - 2(remove show and click)
(cvm op is a customized op, which input is a sequence ha
s embedd_with_cvm default, so we need an
op named cvm to decided whever use it or not.)
Returns:
...
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