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33ca455a
编写于
4月 26, 2021
作者:
Z
Zhong Hui
提交者:
GitHub
4月 26, 2021
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[DOC] Clarify the difference of paddle.norm and np.linalg.norm (#32530)
* [DOC] Clarify the difference between paddle.norm and np.linalg.norm
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with
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+45
-35
python/paddle/tensor/linalg.py
python/paddle/tensor/linalg.py
+45
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python/paddle/tensor/linalg.py
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33ca455a
...
@@ -177,6 +177,12 @@ def norm(x, p='fro', axis=None, keepdim=False, name=None):
...
@@ -177,6 +177,12 @@ def norm(x, p='fro', axis=None, keepdim=False, name=None):
Returns the matrix norm (Frobenius) or vector norm (the 1-norm, the Euclidean
Returns the matrix norm (Frobenius) or vector norm (the 1-norm, the Euclidean
or 2-norm, and in general the p-norm for p > 0) of a given tensor.
or 2-norm, and in general the p-norm for p > 0) of a given tensor.
.. note::
This norm API is different from `numpy.linalg.norm`.
This api supports high-order input tensors (rank >= 3), and certain axis need to be pointed out to calculate the norm.
But `numpy.linalg.norm` only supports 1-D vector or 2-D matrix as input tensor.
For p-order matrix norm, this api actually treats matrix as a flattened vector to calculate the vector norm, NOT REAL MATRIX NORM.
Args:
Args:
x (Tensor): The input tensor could be N-D tensor, and the input data
x (Tensor): The input tensor could be N-D tensor, and the input data
type could be float32 or float64.
type could be float32 or float64.
...
@@ -344,6 +350,10 @@ def norm(x, p='fro', axis=None, keepdim=False, name=None):
...
@@ -344,6 +350,10 @@ def norm(x, p='fro', axis=None, keepdim=False, name=None):
return
reduce_out
return
reduce_out
def
p_matrix_norm
(
input
,
porder
=
1.
,
axis
=
axis
,
keepdim
=
False
,
name
=
None
):
def
p_matrix_norm
(
input
,
porder
=
1.
,
axis
=
axis
,
keepdim
=
False
,
name
=
None
):
"""
NOTE:
This function actually treats the matrix as flattened vector to calculate vector norm instead of matrix norm.
"""
block
=
LayerHelper
(
'norm'
,
**
locals
())
block
=
LayerHelper
(
'norm'
,
**
locals
())
out
=
block
.
create_variable_for_type_inference
(
out
=
block
.
create_variable_for_type_inference
(
dtype
=
block
.
input_dtype
())
dtype
=
block
.
input_dtype
())
...
...
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