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b2f41825
编写于
12月 30, 2022
作者:
R
Roc
提交者:
GitHub
12月 30, 2022
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差异文件
unit test of reduce with zero dim (#49436)
上级
23c1ac2c
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python/paddle/fluid/tests/unittests/collective/process_group_nccl.py
...le/fluid/tests/unittests/collective/process_group_nccl.py
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python/paddle/fluid/tests/unittests/collective/process_group_nccl.py
浏览文件 @
b2f41825
...
...
@@ -488,6 +488,9 @@ class TestProcessGroupFp32(unittest.TestCase):
task
.
wait
()
print
(
"test reduce prod api ok"
)
test_reduce_with_zero_dim
([],
self
.
dtype
,
pg
)
# test Scatter
# rank 0
in_shape
=
list
(
self
.
shape
)
...
...
@@ -601,5 +604,88 @@ class TestProcessGroupFp16(TestProcessGroupFp32):
self
.
shape
=
(
4
,
20
,
20
)
def
test_reduce_with_zero_dim
(
shape
,
dtype
,
pg
):
# test Reduce With Zero Dim
# rank 0
x
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
y
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_x
=
paddle
.
to_tensor
(
x
)
tensor_y
=
paddle
.
to_tensor
(
y
)
sum_result
=
tensor_x
+
tensor_y
if
pg
.
rank
()
==
0
:
task
=
dist
.
reduce
(
tensor_x
,
0
,
sync_op
=
True
)
paddle
.
device
.
cuda
.
synchronize
()
# rank 1
else
:
task
=
dist
.
reduce
(
tensor_y
,
0
,
sync_op
=
False
)
task
.
wait
()
paddle
.
device
.
cuda
.
synchronize
()
if
pg
.
rank
()
==
0
:
assert
np
.
array_equal
(
tensor_x
,
sum_result
)
and
len
(
tensor_x
.
shape
)
==
0
print
(
"test reduce with zero dim sum api ok
\n
"
)
# test reduce with zero dim max
# rank 0
x
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_x
=
paddle
.
to_tensor
(
x
)
# rank 1
y
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_y
=
paddle
.
to_tensor
(
y
)
max_result
=
paddle
.
maximum
(
tensor_x
,
tensor_y
)
if
pg
.
rank
()
==
0
:
task
=
dist
.
reduce
(
tensor_x
,
0
,
dist
.
ReduceOp
.
MAX
,
sync_op
=
False
)
task
.
wait
()
assert
np
.
array_equal
(
tensor_x
,
max_result
)
and
len
(
tensor_x
.
shape
)
==
0
else
:
task
=
dist
.
reduce
(
tensor_y
,
0
,
dist
.
ReduceOp
.
MAX
,
sync_op
=
False
)
task
.
wait
()
print
(
"test reduce with zero dim max api ok"
)
# test reduce with zero dim min
# rank 0
x
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_x
=
paddle
.
to_tensor
(
x
)
# rank 1
y
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_y
=
paddle
.
to_tensor
(
y
)
min_result
=
paddle
.
minimum
(
tensor_x
,
tensor_y
)
if
pg
.
rank
()
==
0
:
task
=
dist
.
reduce
(
tensor_x
,
0
,
dist
.
ReduceOp
.
MIN
,
sync_op
=
False
)
task
.
wait
()
assert
np
.
array_equal
(
tensor_x
,
min_result
)
and
len
(
tensor_x
.
shape
)
==
0
else
:
task
=
dist
.
reduce
(
tensor_y
,
0
,
dist
.
ReduceOp
.
MIN
,
sync_op
=
False
)
task
.
wait
()
print
(
"test reduce with zero dim min api ok"
)
# test reduce with zero dim product
# rank 0
x
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_x
=
paddle
.
to_tensor
(
x
)
# rank 1
y
=
np
.
random
.
random
(
shape
).
astype
(
dtype
)
tensor_y
=
paddle
.
to_tensor
(
y
)
prod_result
=
np
.
multiply
(
x
,
y
)
if
pg
.
rank
()
==
0
:
task
=
dist
.
reduce
(
tensor_x
,
0
,
dist
.
ReduceOp
.
PROD
,
sync_op
=
False
)
task
.
wait
()
assert
(
np
.
array_equal
(
tensor_x
,
prod_result
)
and
len
(
tensor_x
.
shape
)
==
0
)
else
:
task
=
dist
.
reduce
(
tensor_y
,
0
,
dist
.
ReduceOp
.
PROD
,
sync_op
=
False
)
task
.
wait
()
print
(
"test reduce with zero dim prod api ok"
)
if
__name__
==
"__main__"
:
unittest
.
main
()
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