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OpenDAS
vision
Commits
59c67318
Unverified
Commit
59c67318
authored
May 19, 2021
by
Prabhat Roy
Committed by
GitHub
May 19, 2021
Browse files
Updated all_gather() to make use of all_gather_object() (#3857)
parent
3c47bfdf
Changes
1
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1 changed file
with
4 additions
and
33 deletions
+4
-33
references/detection/utils.py
references/detection/utils.py
+4
-33
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references/detection/utils.py
View file @
59c67318
from
collections
import
defaultdict
,
deque
from
collections
import
defaultdict
,
deque
import
datetime
import
datetime
import
pickle
import
errno
import
os
import
time
import
time
import
torch
import
torch
import
torch.distributed
as
dist
import
torch.distributed
as
dist
import
errno
import
os
class
SmoothedValue
(
object
):
class
SmoothedValue
(
object
):
"""Track a series of values and provide access to smoothed values over a
"""Track a series of values and provide access to smoothed values over a
...
@@ -83,35 +81,8 @@ def all_gather(data):
...
@@ -83,35 +81,8 @@ def all_gather(data):
world_size
=
get_world_size
()
world_size
=
get_world_size
()
if
world_size
==
1
:
if
world_size
==
1
:
return
[
data
]
return
[
data
]
data_list
=
[
None
]
*
world_size
# serialized to a Tensor
dist
.
all_gather_object
(
data_list
,
data
)
buffer
=
pickle
.
dumps
(
data
)
storage
=
torch
.
ByteStorage
.
from_buffer
(
buffer
)
tensor
=
torch
.
ByteTensor
(
storage
).
to
(
"cuda"
)
# obtain Tensor size of each rank
local_size
=
torch
.
tensor
([
tensor
.
numel
()],
device
=
"cuda"
)
size_list
=
[
torch
.
tensor
([
0
],
device
=
"cuda"
)
for
_
in
range
(
world_size
)]
dist
.
all_gather
(
size_list
,
local_size
)
size_list
=
[
int
(
size
.
item
())
for
size
in
size_list
]
max_size
=
max
(
size_list
)
# receiving Tensor from all ranks
# we pad the tensor because torch all_gather does not support
# gathering tensors of different shapes
tensor_list
=
[]
for
_
in
size_list
:
tensor_list
.
append
(
torch
.
empty
((
max_size
,),
dtype
=
torch
.
uint8
,
device
=
"cuda"
))
if
local_size
!=
max_size
:
padding
=
torch
.
empty
(
size
=
(
max_size
-
local_size
,),
dtype
=
torch
.
uint8
,
device
=
"cuda"
)
tensor
=
torch
.
cat
((
tensor
,
padding
),
dim
=
0
)
dist
.
all_gather
(
tensor_list
,
tensor
)
data_list
=
[]
for
size
,
tensor
in
zip
(
size_list
,
tensor_list
):
buffer
=
tensor
.
cpu
().
numpy
().
tobytes
()[:
size
]
data_list
.
append
(
pickle
.
loads
(
buffer
))
return
data_list
return
data_list
...
...
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