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pytensor
Commits
2a857e3a
提交
2a857e3a
authored
10月 22, 2015
作者:
carriepl
提交者:
Frederic
12月 16, 2015
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差异文件
Update GpuDnnConvGradI for CuDNN v4 (gpua backend)
上级
1e48b734
隐藏空白字符变更
内嵌
并排
正在显示
2 个修改的文件
包含
43 行增加
和
11 行删除
+43
-11
dnn.py
theano/sandbox/gpuarray/dnn.py
+17
-6
dnn_gi.c
theano/sandbox/gpuarray/dnn_gi.c
+26
-5
没有找到文件。
theano/sandbox/gpuarray/dnn.py
浏览文件 @
2a857e3a
...
@@ -667,16 +667,23 @@ class GpuDnnConvGradI(DnnBase):
...
@@ -667,16 +667,23 @@ class GpuDnnConvGradI(DnnBase):
if
self
.
inplace
:
if
self
.
inplace
:
self
.
destroy_map
=
{
0
:
[
2
]}
self
.
destroy_map
=
{
0
:
[
2
]}
if
algo
is
None
:
if
algo
is
None
:
algo
=
config
.
dnn
.
conv
.
algo_bwd
algo
=
config
.
dnn
.
conv
.
algo_bwd
_data
self
.
algo
=
algo
self
.
algo
=
algo
assert
self
.
algo
in
[
'none'
,
'deterministic'
,
'fft'
,
'guess_once'
,
'guess_on_shape_change'
,
'time_once'
,
# The small-workspace implementation is only available from CuDNN V4
'time_on_shape_change'
]
# onward.
if
version
()
<
(
4000
,
4000
)
and
self
.
algo
==
'fft_tiling'
:
raise
RuntimeError
(
"CuDNN's tiled-FFT convolution requires CuDNN "
"v4 or more recent"
)
assert
self
.
algo
in
[
'none'
,
'deterministic'
,
'fft'
,
'fft_tiling'
,
'guess_once'
,
'guess_on_shape_change'
,
'time_once'
,
'time_on_shape_change'
]
def
__setstate__
(
self
,
d
):
def
__setstate__
(
self
,
d
):
self
.
__dict__
.
update
(
d
)
self
.
__dict__
.
update
(
d
)
if
not
hasattr
(
self
,
'algo'
):
if
not
hasattr
(
self
,
'algo'
):
self
.
algo
=
config
.
dnn
.
conv
.
algo_bwd
self
.
algo
=
config
.
dnn
.
conv
.
algo_bwd
_data
if
not
hasattr
(
self
,
'inplace'
):
if
not
hasattr
(
self
,
'inplace'
):
self
.
inplace
=
False
self
.
inplace
=
False
...
@@ -713,6 +720,9 @@ class GpuDnnConvGradI(DnnBase):
...
@@ -713,6 +720,9 @@ class GpuDnnConvGradI(DnnBase):
alg
=
'CUDNN_CONVOLUTION_BWD_DATA_ALGO_1'
alg
=
'CUDNN_CONVOLUTION_BWD_DATA_ALGO_1'
if
self
.
algo
==
'fft'
:
if
self
.
algo
==
'fft'
:
alg
=
'CUDNN_CONVOLUTION_BWD_DATA_ALGO_FFT'
alg
=
'CUDNN_CONVOLUTION_BWD_DATA_ALGO_FFT'
if
self
.
algo
==
'fft_tiling'
:
# big workspace but less than fft
alg
=
'CUDNN_CONVOLUTION_BWD_DATA_ALGO_FFT_TILING'
if
self
.
algo
in
[
'guess_once'
,
'guess_on_shape_change'
,
if
self
.
algo
in
[
'guess_once'
,
'guess_on_shape_change'
,
'time_once'
,
'time_on_shape_change'
]:
'time_once'
,
'time_on_shape_change'
]:
...
@@ -743,7 +753,8 @@ class GpuDnnConvGradI(DnnBase):
...
@@ -743,7 +753,8 @@ class GpuDnnConvGradI(DnnBase):
raise
TypeError
(
"The number of dimensions of "
raise
TypeError
(
"The number of dimensions of "
"kern, topgrad and output must match"
)
"kern, topgrad and output must match"
)
if
kern
.
type
.
ndim
==
5
and
self
.
algo
in
[
'fft'
,
'deterministic'
]:
if
(
kern
.
type
.
ndim
==
5
and
self
.
algo
in
[
'fft'
,
'deterministic'
,
'fft_tiling'
]):
raise
ValueError
(
"convolution algo
%
s can't be used for "
raise
ValueError
(
"convolution algo
%
s can't be used for "
"3d convolutions"
,
(
self
.
algo
,))
"3d convolutions"
,
(
self
.
algo
,))
...
...
theano/sandbox/gpuarray/dnn_gi.c
浏览文件 @
2a857e3a
...
@@ -129,7 +129,16 @@ APPLY_SPECIFIC(conv_gi)(PyGpuArrayObject *kerns, PyGpuArrayObject *output,
...
@@ -129,7 +129,16 @@ APPLY_SPECIFIC(conv_gi)(PyGpuArrayObject *kerns, PyGpuArrayObject *output,
#endif
#endif
#if CUDNN_VERSION > 3000
#if CUDNN_VERSION > 3000
if
(
algo
==
CUDNN_CONVOLUTION_BWD_DATA_ALGO_FFT
)
{
// The FFT implementation does not support strides, 1x1 filters or inputs
// with a spatial dimension larger than 1024. The tiled-FFT implementation
// does not support strides.
// If the chosen implementation is FFT or tiled-FFT, validate that it can
// be used on the current data and default to a safe implementation if it
// can't.
// The following code is 2d-specific but it is fine as FFT and tiled-FFT are
// defined only for 2d filters
if
((
algo
==
CUDNN_CONVOLUTION_FWD_ALGO_FFT
||
algo
==
CUDNN_CONVOLUTION_FWD_ALGO_FFT_TILING
)
&&
PyGpuArray_NDIM
(
input
)
==
4
)
{
int
nd
;
int
nd
;
int
pad
[
2
];
int
pad
[
2
];
int
stride
[
2
];
int
stride
[
2
];
...
@@ -145,10 +154,22 @@ APPLY_SPECIFIC(conv_gi)(PyGpuArrayObject *kerns, PyGpuArrayObject *output,
...
@@ -145,10 +154,22 @@ APPLY_SPECIFIC(conv_gi)(PyGpuArrayObject *kerns, PyGpuArrayObject *output,
return
1
;
return
1
;
}
}
if
(
stride
[
0
]
!=
1
||
stride
[
1
]
!=
1
||
if
(
chosen_algo
==
CUDNN_CONVOLUTION_FWD_ALGO_FFT
)
PyGpuArray_DIM
(
*
input
,
2
)
>
1024
||
PyGpuArray_DIM
(
*
input
,
3
)
>
1024
||
{
(
PyGpuArray_DIM
(
kerns
,
2
)
==
1
&&
PyGpuArray_DIM
(
kerns
,
3
)
==
1
))
{
if
(
stride
[
0
]
!=
1
||
stride
[
1
]
!=
1
||
algo
=
CUDNN_CONVOLUTION_BWD_DATA_ALGO_0
;
PyGpuArray_DIM
(
*
input
,
2
)
>
1024
||
PyGpuArray_DIM
(
*
input
,
3
)
>
1024
||
(
PyGpuArray_DIM
(
kerns
,
2
)
==
1
&&
PyGpuArray_DIM
(
kerns
,
3
)
==
1
))
{
chosen_algo
=
CUDNN_CONVOLUTION_BWD_DATA_ALGO_0
;
}
}
else
{
// chosen_algo == CUDNN_CONVOLUTION_FWD_ALGO_FFT_TILING
if
(
stride
[
0
]
!=
1
||
stride
[
1
]
!=
1
)
{
chosen_algo
=
CUDNN_CONVOLUTION_BWD_DATA_ALGO_0
;
}
}
}
}
}
#endif
#endif
...
...
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