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7d3e46e1
编写于
8月 21, 2020
作者:
D
Dong Daxiang
提交者:
GitHub
8月 21, 2020
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【paddle.fleet】Document refine (#26526)
* add documentation for DistributedStrategy
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python/paddle/distributed/fleet/base/distributed_strategy.py
python/paddle/distributed/fleet/base/distributed_strategy.py
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python/paddle/distributed/fleet/base/distributed_strategy.py
浏览文件 @
7d3e46e1
...
...
@@ -333,6 +333,17 @@ class DistributedStrategy(object):
@
property
def
sync_nccl_allreduce
(
self
):
"""
Indicating whether we are using synchronized all reduce in each communication thread
We note that system overhead is usually lower when sync_nccl_allreduce = True
Examples:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.sync_nccl_allreduce = True
"""
return
self
.
strategy
.
sync_nccl_allreduce
@
sync_nccl_allreduce
.
setter
...
...
@@ -344,6 +355,18 @@ class DistributedStrategy(object):
@
property
def
use_hierarchical_allreduce
(
self
):
"""
Indicating whether we are using hierarchical allreduce in collective communication
Hierarchical allreduce often does allreduce within a certain node group and then do
allreduce among the leaders of each group
Examples:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.use_hierarchical_allreduce = True
"""
return
self
.
strategy
.
use_hierarchical_allreduce
@
use_hierarchical_allreduce
.
setter
...
...
@@ -357,6 +380,17 @@ class DistributedStrategy(object):
@
property
def
hierarchical_allreduce_inter_nranks
(
self
):
"""
Number of ranks for low level node groups in hierarchical allreduce
Default value: number of GPU cards on each single GPU machine
Example:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.hierarchical_allreduce_inter_nranks = 8
"""
return
self
.
strategy
.
hierarchical_allreduce_inter_nranks
@
hierarchical_allreduce_inter_nranks
.
setter
...
...
@@ -370,6 +404,19 @@ class DistributedStrategy(object):
@
property
def
sync_batch_norm
(
self
):
"""
Indicating whether we are using sync_batch_norm to do synchronous batch normalization among all training nodes.
Default value: False
Examples:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.sync_batch_norm = True
"""
return
self
.
strategy
.
sync_batch_norm
@
sync_batch_norm
.
setter
...
...
@@ -381,6 +428,17 @@ class DistributedStrategy(object):
@
property
def
fuse_all_reduce_ops
(
self
):
"""
Indicating whether we are using fuse_all_reduce_ops for gradient fusion during backward phase of training
Default value: True
Examples:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.fuse_all_reduce_ops = False
"""
return
self
.
strategy
.
fuse_all_reduce_ops
@
fuse_all_reduce_ops
.
setter
...
...
@@ -392,6 +450,18 @@ class DistributedStrategy(object):
@
property
def
fuse_grad_size_in_MB
(
self
):
"""
Specifying the size of gradient to fuse in Mega-Bytes
Default value: 32
Examples:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.fuse_grad_size_in_MB = 50
"""
return
self
.
strategy
.
fuse_grad_size_in_MB
@
fuse_grad_size_in_MB
.
setter
...
...
@@ -416,6 +486,19 @@ class DistributedStrategy(object):
@
property
def
nccl_comm_num
(
self
):
"""
Specifying the number of NCCL communicator
Default value: 1
Examples:
.. code-block:: python
import paddle.distributed.fleet as fleet
strategy = fleet.DistributedStrategy()
strategy.nccl_comm_num = 2
"""
return
self
.
strategy
.
nccl_comm_num
@
nccl_comm_num
.
setter
...
...
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