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OpenDAS
fairscale
Commits
93d115c6
Unverified
Commit
93d115c6
authored
Feb 26, 2021
by
Min Xu
Committed by
GitHub
Feb 26, 2021
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update readme (#439)
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506d6209
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README.md
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fairscale/experimental/nn/__init__.py
fairscale/experimental/nn/__init__.py
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README.md
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@@ -10,20 +10,22 @@ FairScale is a PyTorch extension library for high performance and large scale tr
FairScale supports:
*
Parallelism:
*
Pipeline parallelism (fairscale.nn.pipe)
*
Asynchronous Pipeline parallelism (fairscale.nn.async_pipe)
*
Mixture of experts (fairscale.nn.moe.moe_layer)
*
Model Parallelism (fairscale.nn.model_parallel.layers)
*
_experimental_ AmpNet (fairscale.experimental.nn.ampnet_pipe)
*
Pipeline parallelism (
`
fairscale.nn.pipe
`
)
*
Asynchronous Pipeline parallelism (
`
fairscale.nn.async_pipe
`
)
*
Mixture of experts (
`
fairscale.nn.moe.moe_layer
`
)
*
Model Parallelism (
`
fairscale.nn.model_parallel.layers
`
)
*
_experimental_ AmpNet (
`
fairscale.experimental.nn.ampnet_pipe
`
)
*
Sharded training:
*
Optimizer state sharding (fairscale.optim.OSS)
*
Sharded grad scaler - automatic mixed precision (fairscale.optim.grad_scaler)
*
Sharded distributed data parallel (fairscale.nn.ShardedDataParallel)
*
Fully Sharded Data Parallel (FSDP) (fairscale.nn.FullyShardedDataParallel)
*
Optimizer state sharding (
`fairscale.optim.OSS`
)
*
Sharded Data Parallel (SDP) (
`fairscale.nn.ShardedDataParallel`
)
*
Fully Sharded Data Parallel (FSDP) (
`fairscale.nn.FullyShardedDataParallel`
)
*
Optimization at scale:
*
AdaScale SGD (fairscale.optim.AdaScale)
*
AdaScale SGD (
`
fairscale.optim.AdaScale
`
)
*
GPU memory optimization:
*
Activation checkpointing wrapper(fairscale.nn.misc.checkpoint_wrapper)
*
Activation checkpointing wrapper (
`fairscale.nn.misc.checkpoint_wrapper`
)
*
_experimental_ CPU offloaded model (
`fairscale.experimental.nn.offload.OffloadModel`
)
*
GPU speed optimization:
*
Sharded grad scaler - automatic mixed precision (
`fairscale.optim.grad_scaler`
)
## Requirements
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fairscale/experimental/nn/__init__.py
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93d115c6
# Copyright (c) Facebook, Inc. and its affiliates.
#
# This source code is licensed under the BSD license found in the
# LICENSE file in the root directory of this source tree.
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