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53ed9239
编写于
10月 21, 2021
作者:
C
cuicheng01
提交者:
GitHub
10月 21, 2021
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差异文件
Merge pull request #1320 from RainFrost1/develop
fix clas distributed eval bug
上级
fc6d2114
fd6f1ad2
变更
1
隐藏空白更改
内联
并排
Showing
1 changed file
with
27 addition
and
7 deletion
+27
-7
ppcls/engine/evaluation/classification.py
ppcls/engine/evaluation/classification.py
+27
-7
未找到文件。
ppcls/engine/evaluation/classification.py
浏览文件 @
53ed9239
...
@@ -34,6 +34,10 @@ def classification_eval(engine, epoch_id=0):
...
@@ -34,6 +34,10 @@ def classification_eval(engine, epoch_id=0):
metric_key
=
None
metric_key
=
None
tic
=
time
.
time
()
tic
=
time
.
time
()
accum_samples
=
0
total_samples
=
len
(
engine
.
eval_dataloader
.
dataset
)
if
not
engine
.
use_dali
else
engine
.
eval_dataloader
.
size
max_iter
=
len
(
engine
.
eval_dataloader
)
-
1
if
platform
.
system
(
max_iter
=
len
(
engine
.
eval_dataloader
)
-
1
if
platform
.
system
(
)
==
"Windows"
else
len
(
engine
.
eval_dataloader
)
)
==
"Windows"
else
len
(
engine
.
eval_dataloader
)
for
iter_id
,
batch
in
enumerate
(
engine
.
eval_dataloader
):
for
iter_id
,
batch
in
enumerate
(
engine
.
eval_dataloader
):
...
@@ -61,15 +65,31 @@ def classification_eval(engine, epoch_id=0):
...
@@ -61,15 +65,31 @@ def classification_eval(engine, epoch_id=0):
if
key
not
in
output_info
:
if
key
not
in
output_info
:
output_info
[
key
]
=
AverageMeter
(
key
,
'7.5f'
)
output_info
[
key
]
=
AverageMeter
(
key
,
'7.5f'
)
output_info
[
key
].
update
(
loss_dict
[
key
].
numpy
()[
0
],
batch_size
)
output_info
[
key
].
update
(
loss_dict
[
key
].
numpy
()[
0
],
batch_size
)
# just for DistributedBatchSampler issue: repeat sampling
current_samples
=
batch_size
*
paddle
.
distributed
.
get_world_size
()
accum_samples
+=
current_samples
# calc metric
# calc metric
if
engine
.
eval_metric_func
is
not
None
:
if
engine
.
eval_metric_func
is
not
None
:
metric_dict
=
engine
.
eval_metric_func
(
out
,
batch
[
1
])
if
paddle
.
distributed
.
get_world_size
()
>
1
:
if
paddle
.
distributed
.
get_world_size
()
>
1
:
for
key
in
metric_dict
:
pred_list
=
[]
paddle
.
distributed
.
all_reduce
(
label_list
=
[]
metric_dict
[
key
],
op
=
paddle
.
distributed
.
ReduceOp
.
SUM
)
if
isinstance
(
out
,
dict
):
metric_dict
[
key
]
=
metric_dict
[
out
=
out
[
"logits"
]
key
]
/
paddle
.
distributed
.
get_world_size
()
paddle
.
distributed
.
all_gather
(
pred_list
,
out
)
paddle
.
distributed
.
all_gather
(
label_list
,
batch
[
1
])
pred
=
paddle
.
concat
(
pred_list
,
0
)
labels
=
paddle
.
concat
(
label_list
,
0
)
if
accum_samples
>
total_samples
:
pred
=
pred
[:
total_samples
+
current_samples
-
accum_samples
]
labels
=
labels
[:
total_samples
+
current_samples
-
accum_samples
]
current_samples
=
total_samples
+
current_samples
-
accum_samples
metric_dict
=
engine
.
eval_metric_func
(
pred
,
labels
)
else
:
metric_dict
=
engine
.
eval_metric_func
(
out
,
batch
[
1
])
for
key
in
metric_dict
:
for
key
in
metric_dict
:
if
metric_key
is
None
:
if
metric_key
is
None
:
metric_key
=
key
metric_key
=
key
...
@@ -77,7 +97,7 @@ def classification_eval(engine, epoch_id=0):
...
@@ -77,7 +97,7 @@ def classification_eval(engine, epoch_id=0):
output_info
[
key
]
=
AverageMeter
(
key
,
'7.5f'
)
output_info
[
key
]
=
AverageMeter
(
key
,
'7.5f'
)
output_info
[
key
].
update
(
metric_dict
[
key
].
numpy
()[
0
],
output_info
[
key
].
update
(
metric_dict
[
key
].
numpy
()[
0
],
batch_size
)
current_samples
)
time_info
[
"batch_cost"
].
update
(
time
.
time
()
-
tic
)
time_info
[
"batch_cost"
].
update
(
time
.
time
()
-
tic
)
...
...
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