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f29a3c68
编写于
11月 16, 2021
作者:
W
Weilong Wu
提交者:
GitHub
11月 16, 2021
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电子邮件补丁
差异文件
Fix the logic of VarBase _to func (#37193)
上级
4c160be2
变更
1
隐藏空白更改
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Showing
1 changed file
with
11 addition
and
9 deletion
+11
-9
python/paddle/fluid/dygraph/varbase_patch_methods.py
python/paddle/fluid/dygraph/varbase_patch_methods.py
+11
-9
未找到文件。
python/paddle/fluid/dygraph/varbase_patch_methods.py
浏览文件 @
f29a3c68
...
...
@@ -386,21 +386,18 @@ def monkey_patch_varbase():
device
=
t
.
place
if
dtype
is
None
:
dtype
=
t
.
dtype
if
type
(
dtype
)
is
str
:
dtype
=
framework
.
convert_np_dtype_to_dtype_
(
dtype
)
# 1. gpu place need to determine whether the memory is sufficient for allocation.
if
t
.
place
.
is_gpu_place
():
gpu_memory_available
=
core
.
gpu_memory_available
()
# for gpu, minimum memory allocation unit is 256 bytes.
if
type
(
dtype
)
is
str
:
size_dtype
=
core
.
size_of_dtype
(
framework
.
convert_np_dtype_to_dtype_
(
dtype
))
else
:
size_dtype
=
core
.
size_of_dtype
(
dtype
)
size_dtype
=
core
.
size_of_dtype
(
dtype
)
# Note(weilong wu): Paddle GPU minimum memory allocation unit is 256 bytes,
# waiting_alloc_memory will compute the memory space occupied by 't'.
# Coefficient 1.2 is used to avoid OOM that may occur in this critical state when the memory is just enough.
waiting_alloc_memory
=
(
(
t
.
_numel
()
*
size_dtype
)
/
256
+
1
)
*
256
*
1.2
gpu_memory_available
=
core
.
gpu_memory_available
()
if
gpu_memory_available
<
waiting_alloc_memory
:
# Copy Tensor to cpu
t_used
=
t
.
_copy_to
(
paddle
.
CPUPlace
(),
blocking
)
...
...
@@ -414,12 +411,17 @@ def monkey_patch_varbase():
# 2. cast Tensor to dtype
if
dtype
is
not
None
and
dtype
!=
t_used
.
dtype
:
t_casted
=
t_used
.
cast
(
dtype
=
dtype
)
with
paddle
.
fluid
.
framework
.
_dygraph_place_guard
(
place
=
t_used
.
place
):
t_casted
=
t_used
.
cast
(
dtype
=
dtype
)
else
:
t_casted
=
t_used
# 3. Copy casted Tensor(in CPU or GPU) to device
new_t
=
t_casted
.
_copy_to
(
device
,
blocking
)
if
device
is
not
None
and
not
t_casted
.
place
.
_equals
(
device
):
new_t
=
t_casted
.
_copy_to
(
device
,
blocking
)
else
:
new_t
=
t_casted
# 4. Share Tensor to origin Tensor
dst_tensor
=
t
.
value
().
get_tensor
()
...
...
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