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19228bd1
编写于
9月 11, 2020
作者:
L
Leo Chen
提交者:
GitHub
9月 11, 2020
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差异文件
Temporally disable zero_copy (#27248)
* temporally disable zero_copy * add test * follow comments
上级
f402d8d8
变更
3
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Showing
3 changed file
with
32 addition
and
15 deletion
+32
-15
python/paddle/fluid/dygraph/base.py
python/paddle/fluid/dygraph/base.py
+14
-4
python/paddle/fluid/tests/unittests/test_imperative_numpy_bridge.py
...dle/fluid/tests/unittests/test_imperative_numpy_bridge.py
+14
-6
python/paddle/tensor/creation.py
python/paddle/tensor/creation.py
+4
-5
未找到文件。
python/paddle/fluid/dygraph/base.py
浏览文件 @
19228bd1
...
...
@@ -25,6 +25,7 @@ from .tracer import Tracer
import
logging
import
objgraph
from
..data_feeder
import
convert_dtype
import
warnings
__all__
=
[
'no_grad'
,
'no_grad_'
,
'grad'
,
'guard'
,
'enable_dygraph'
,
'disable_dygraph'
,
...
...
@@ -612,7 +613,7 @@ def to_variable(value, name=None, zero_copy=None, dtype=None):
refer to :ref:`api_guide_Name` .
zero_copy(bool, optional): Whether to share memory with the input numpy
array. This parameter only works with CPUPlace and will be set to
True when it is None. Default: None.
True when it is None. Default: None.
(Note: zero_copy is discarded temporally for some reason.)
dtype(str, optional): The desired data type of returned ``Variable`` .
Can be 'bool' , 'float16' , 'float32' , 'float64' , 'int8' , 'int16' ,
'int32' , 'int64' , 'uint8' . Default: None.
...
...
@@ -665,8 +666,17 @@ def to_variable(value, name=None, zero_copy=None, dtype=None):
else
:
if
isinstance
(
framework
.
_current_expected_place
(),
framework
.
core
.
CPUPlace
):
if
zero_copy
is
None
:
zero_copy
=
True
#TODO(zhiqiu): we found two problems when enable zero_copy on CPUPlace.
# (1): eigen requires 16-bytes alignments, but the data of numpy array may not statisfy.
# Details: https://eigen.tuxfamily.org/dox/group__TopicUnalignedArrayAssert.html
# (2): when used in flask framework, it may result in hang.
# Details: https://github.com/PaddlePaddle/Paddle/issues/26635
# So, we temporally diable the zero_copy strategy.
if
zero_copy
==
True
:
warnings
.
warn
(
"Currently, zero_copy is not supported, and it will be discarded."
)
zero_copy
=
False
else
:
assert
not
zero_copy
,
"zero_copy mode can only be used with CPUPlace"
...
...
python/paddle/fluid/tests/unittests/test_imperative_numpy_bridge.py
浏览文件 @
19228bd1
...
...
@@ -15,18 +15,26 @@
import
unittest
import
numpy
as
np
import
paddle.fluid
as
fluid
import
warnings
class
TestImperativeNumpyBridge
(
unittest
.
TestCase
):
def
test_tensor_from_numpy
(
self
):
data_np
=
np
.
array
([[
2
,
3
,
1
]]).
astype
(
'float32'
)
with
fluid
.
dygraph
.
guard
(
fluid
.
CPUPlace
()):
with
warnings
.
catch_warnings
(
record
=
True
)
as
w
:
warnings
.
simplefilter
(
"always"
)
var
=
fluid
.
dygraph
.
to_variable
(
data_np
,
zero_copy
=
True
)
self
.
assertTrue
(
np
.
array_equal
(
var
.
numpy
(),
data_np
))
data_np
[
0
][
0
]
=
4
self
.
assertEqual
(
data_np
[
0
][
0
],
4
)
self
.
assertEqual
(
var
[
0
][
0
].
numpy
()[
0
],
4
)
self
.
assertTrue
(
np
.
array_equal
(
var
.
numpy
(),
data_np
))
assert
"Currently, zero_copy is not supported, and it will be discarded."
in
str
(
w
[
-
1
].
message
)
# Temporally diable zero_copy
# var = fluid.dygraph.to_variable(data_np, zero_copy=True)
# self.assertTrue(np.array_equal(var.numpy(), data_np))
# data_np[0][0] = 4
# self.assertEqual(data_np[0][0], 4)
# self.assertEqual(var[0][0].numpy()[0], 4)
# self.assertTrue(np.array_equal(var.numpy(), data_np))
var2
=
fluid
.
dygraph
.
to_variable
(
data_np
,
zero_copy
=
False
)
self
.
assertTrue
(
np
.
array_equal
(
var2
.
numpy
(),
data_np
))
data_np
[
0
][
0
]
=
-
1
...
...
python/paddle/tensor/creation.py
浏览文件 @
19228bd1
...
...
@@ -63,8 +63,7 @@ def to_tensor(data, dtype=None, place=None, stop_gradient=True):
If the ``data`` is already a tensor, and ``dtype`` or ``place`` does't change, no copy
will be performed and return origin tensor, otherwise a new tensor will be constructed
and returned. Similarly, if the data is an numpy\.ndarray of with the same ``dtype``
and the current place is cpu, no copy will be performed.
and returned.
The ``ComplexTensor`` is a unique type of paddle. If x is ``ComplexTensor``, then
``x.real`` is the real part, and ``x.imag`` is the imaginary part.
...
...
@@ -209,20 +208,20 @@ def to_tensor(data, dtype=None, place=None, stop_gradient=True):
value
=
data
,
place
=
place
,
persistable
=
False
,
zero_copy
=
Tru
e
,
zero_copy
=
Fals
e
,
stop_gradient
=
stop_gradient
)
else
:
name
=
unique_name
.
generate
(
'generated_tensor'
)
real_tensor
=
paddle
.
Tensor
(
value
=
data
.
real
,
place
=
place
,
zero_copy
=
Tru
e
,
zero_copy
=
Fals
e
,
name
=
name
+
".real"
,
stop_gradient
=
stop_gradient
)
imag_tensor
=
paddle
.
Tensor
(
value
=
data
.
imag
,
place
=
place
,
zero_copy
=
Tru
e
,
zero_copy
=
Fals
e
,
name
=
name
+
".imag"
,
stop_gradient
=
stop_gradient
)
return
paddle
.
ComplexTensor
(
real_tensor
,
imag_tensor
)
...
...
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