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ef8218be
编写于
11月 07, 2018
作者:
B
barrierye
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update docs test=develop
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paddle/fluid/operators/similarity_focus_op.cc
paddle/fluid/operators/similarity_focus_op.cc
+3
-2
python/paddle/fluid/layers/nn.py
python/paddle/fluid/layers/nn.py
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paddle/fluid/operators/similarity_focus_op.cc
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ef8218be
...
@@ -42,8 +42,9 @@ Generate a similarity focus mask with the same shape of input using the followin
...
@@ -42,8 +42,9 @@ Generate a similarity focus mask with the same shape of input using the followin
2. For each index, find the largest numbers in the tensor T, so that the same
2. For each index, find the largest numbers in the tensor T, so that the same
row and same column has at most one number(what it means is that if the
row and same column has at most one number(what it means is that if the
largest number has been found in the i-th row and the j-th column, then
largest number has been found in the i-th row and the j-th column, then
the numbers in the i-th or j-th column will be skipped. Obviously there
the numbers in the i-th row or j-th column will be skipped. And then the
will be min(B, C) numbers), and mark the corresponding position of the
next largest number will be selected from the remaining numbers. Obviously
there will be min(B, C) numbers), and mark the corresponding position of the
3-D similarity focus mask as 1, otherwise as 0. Do elementwise-or for
3-D similarity focus mask as 1, otherwise as 0. Do elementwise-or for
each index.
each index.
3. Broadcast the 3-D similarity focus mask to the same shape of input X.
3. Broadcast the 3-D similarity focus mask to the same shape of input X.
...
...
python/paddle/fluid/layers/nn.py
浏览文件 @
ef8218be
...
@@ -7567,8 +7567,9 @@ def similarity_focus(input, axis, indexes, name=None):
...
@@ -7567,8 +7567,9 @@ def similarity_focus(input, axis, indexes, name=None):
2. For each index, find the largest numbers in the tensor T, so that the same
2. For each index, find the largest numbers in the tensor T, so that the same
row and same column has at most one number(what it means is that if the
row and same column has at most one number(what it means is that if the
largest number has been found in the i-th row and the j-th column, then
largest number has been found in the i-th row and the j-th column, then
the numbers in the i-th or j-th column will be skipped. Obviously there
the numbers in the i-th row or j-th column will be skipped. And then the
will be min(B, C) numbers), and mark the corresponding position of the
next largest number will be selected from the remaining numbers. Obviously
there will be min(B, C) numbers), and mark the corresponding position of the
3-D similarity focus mask as 1, otherwise as 0. Do elementwise-or for
3-D similarity focus mask as 1, otherwise as 0. Do elementwise-or for
each index.
each index.
3. Broadcast the 3-D similarity focus mask to the same shape of input X.
3. Broadcast the 3-D similarity focus mask to the same shape of input X.
...
...
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