455 lines
13 KiB
Python
455 lines
13 KiB
Python
# Copyright (c) 2020 PaddlePaddle Authors. All Rights Reserved.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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from __future__ import annotations
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import datetime
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import hashlib
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from typing import (
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TYPE_CHECKING,
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Literal,
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TypeAlias,
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)
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import paddle
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# (TODO: GhostScreaming) It will be removed later.
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from paddle.base import core
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from paddle.framework import in_dynamic_mode
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from .communication.group import Group, _add_new_group, is_initialized
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from .fleet.layers.mpu.mp_ops import ( # noqa: F401
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_c_concat,
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_c_identity,
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_c_lookup_table,
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_c_softmax_with_cross_entropy,
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_c_softmax_with_multi_label_cross_entropy,
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_c_split,
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_Linear,
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_linear,
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_mp_allreduce,
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_parallel_embedding,
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_parallel_linear,
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_set_var_distributed,
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split,
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)
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if TYPE_CHECKING:
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_BackendList: TypeAlias = Literal["gloo", "nccl", "xccl", "bkcl", "flagcx"]
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from paddle.base.libpaddle import NCCLConfig
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__all__ = []
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_global_env = None
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def _get_global_env():
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global _global_env
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if not _global_env:
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_global_env = paddle.distributed.ParallelEnv()
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return _global_env
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# group map : the map of all group, 0 for GlobalGroup
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# Dict[int, Group]
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_group_map = {}
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_global_env_gid = 0
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# group map by name : the map of all groups from their names
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# Dict[name, Group]
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_group_map_by_name = {}
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# backend map by group : the map of all backend from their groups
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# Dict[group, backend]
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_group_map_backend = {}
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# Name of the default group for init_parallel_env
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_default_group_name = "_default_pg"
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_valid_backend_list = ['nccl', 'gloo', 'heter', 'xccl', 'bkcl', 'flagcx']
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_default_store = None # the default tcp store
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_default_backend = None
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_default_timeout = datetime.timedelta(seconds=1800)
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_start_ring_id = 0
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def _set_default_backend(backend):
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global _default_backend
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_default_backend = backend
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def _set_default_store(store):
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global _default_store
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_default_store = store
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def _get_group_map():
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global _group_map
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if _global_env_gid not in _group_map:
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genv = _get_global_env()
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_group_map[_global_env_gid] = Group(
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genv.rank, 0, list(range(genv.world_size))
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)
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return _group_map
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def _get_global_group():
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return _get_group_map()[_global_env_gid]
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def _get_group_map_by_name():
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global _group_map_by_name
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return _group_map_by_name
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def _get_default_group():
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global _group_map_by_name
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assert is_initialized(), (
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"Call paddle.distributed.init_parallel_env first "
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"to initialize the distributed environment."
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)
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return _get_group_map_by_name()[_default_group_name]
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def _set_group_map(gid, group):
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global _group_map
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assert gid not in _group_map
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_group_map[gid] = group
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def _set_group_map_by_name(name, group):
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global _group_map_by_name
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assert name not in _group_map_by_name
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_group_map_by_name[name] = group
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def _set_group_map_backend(group, backend):
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global _group_map_backend
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assert group not in _group_map_backend
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_group_map_backend[group] = backend
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def _new_ring_id():
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# NOTE(liyurui): For compatible reason, auto parallel and eager mode relay on previous syntax.
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if in_dynamic_mode():
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global _start_ring_id
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_start_ring_id += 1
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return _start_ring_id + max(_get_global_env().nrings, 9)
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else:
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return len(_get_group_map()) + max(_get_global_env().nrings, 9)
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def _new_process_group_impl(
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backend,
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store,
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rank,
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world_size,
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group_name,
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pg_options,
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group_id=0,
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nccl_comm_init_option=0,
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nccl_config=None,
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):
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pg = None
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genv = _get_global_env()
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assert backend in _valid_backend_list, f"Unsupported backend: {backend}."
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if backend == "gloo":
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pg = core.ProcessGroupGloo.create(store, rank, world_size, group_id)
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elif backend == "nccl":
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pg = core.ProcessGroupNCCL.create(
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store,
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rank,
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world_size,
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group_id,
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genv.pg_timeout,
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nccl_comm_init_option,
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nccl_config,
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)
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elif backend == "xccl":
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pg = core.ProcessGroupCustom.create(
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store, genv.device_type, rank, world_size, group_id
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)
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elif backend == "bkcl":
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pg = core.ProcessGroupBKCL.create(store, rank, world_size, group_id)
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elif backend == "flagcx":
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pg = core.ProcessGroupFlagcx.create(
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store,
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rank,
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world_size,
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group_id,
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genv.pg_timeout,
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nccl_comm_init_option,
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)
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return pg
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# _custom_gid provides a way for users to
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# set the group id, which is usually useful
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# to be compatible with the static graph mode.
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_custom_gid = None
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def _set_custom_gid(gid):
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global _custom_gid
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_custom_gid = gid
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def new_group(
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ranks: list[int] | None = None,
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backend: Literal['nccl'] | None = None,
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timeout: datetime.timedelta = _default_timeout,
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nccl_comm_init_option: int = 0,
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nccl_config: NCCLConfig | None = None,
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) -> Group:
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"""
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Creates a new distributed communication group.
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Args:
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ranks (list): The global ranks of group members.
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backend (str): The backend used to create group, only nccl is supported now.
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timeout (datetime.timedelta, optional): The waiting timeout for store relevant options, default is 30 minutes.
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Returns:
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Group: The group instance.
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Examples:
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.. code-block:: pycon
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>>> # doctest: +REQUIRES(env: DISTRIBUTED)
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>>> import paddle
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>>> paddle.distributed.init_parallel_env()
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>>> tindata = paddle.randn(shape=[2, 3])
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>>> gp = paddle.distributed.new_group([2, 4, 6])
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>>> paddle.distributed.all_reduce(tindata, group=gp, sync_op=False)
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"""
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global _custom_gid
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global _group_map
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if in_dynamic_mode():
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global _default_group_name
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gid = _custom_gid if _custom_gid else _new_ring_id()
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group_name = _default_group_name + str(gid)
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if backend != 'heter' and (ranks is None or len(ranks) > 1):
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global_group = _get_default_group()
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global_rank = global_group.rank
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global_ranks = global_group.ranks
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backend = _default_backend if backend is None else backend
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if ranks is None:
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ranks = global_ranks
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assert len(ranks) <= len(global_ranks), (
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"Size of new group must be less than or "
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"equal to that of the default global group."
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)
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size = len(ranks)
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ranks = sorted(ranks)
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if size > 1 and global_rank in ranks:
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rank = 0 if backend == 'heter' else ranks.index(global_rank)
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pg = _new_process_group_impl(
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backend,
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_default_store,
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rank,
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size,
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group_name,
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pg_options=None,
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group_id=gid,
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nccl_comm_init_option=nccl_comm_init_option,
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nccl_config=nccl_config,
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)
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else:
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rank = -1
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pg = None
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group = Group(rank, gid, ranks, pg=pg, name=group_name)
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_group_map_by_name[group_name] = group
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_group_map[gid] = group
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_group_map_backend[group] = backend
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# TODO: The method below is a new method for group management, will replace the previous
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# three in the future.
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_add_new_group(group)
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return group
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if not backend:
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backend = 'nccl'
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assert backend == 'nccl', "backend other than nccl is not supported yet"
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genv = _get_global_env()
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global_rank = genv.rank
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ring_id = _new_ring_id()
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if global_rank not in ranks:
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gp = Group(-1, ring_id, ranks)
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_group_map[ring_id] = gp
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else:
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ranks = sorted(ranks)
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group_rank = ranks.index(global_rank)
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group_size = len(ranks)
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gp = Group(group_rank, ring_id, ranks)
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_group_map[ring_id] = gp
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if group_size >= 2:
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strategy = core.ParallelStrategy()
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strategy.nranks = group_size
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strategy.local_rank = group_rank
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strategy.trainer_endpoints = [
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genv.trainer_endpoints[i] for i in ranks
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]
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strategy.current_endpoint = genv.current_endpoint
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strategy.nrings = 1
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if core.is_compiled_with_cuda():
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place = core.CUDAPlace(genv.device_id)
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core.NCCLParallelContext(strategy, place).init_with_ring_id(
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ring_id
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)
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elif core.is_compiled_with_xpu():
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place = core.XPUPlace(genv.device_id)
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core.BKCLParallelContext(strategy, place).init_with_ring_id(
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ring_id
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)
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else:
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raise AssertionError("no cuda device found")
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else:
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return gp
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# TODO(shenliang03): This is a temporary solution to solve the problem of
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# hang caused by cross-creation of new_group
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tmp = (
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paddle.to_tensor([1], dtype="int32")
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if in_dynamic_mode()
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else paddle.full([0], 1, dtype="int32")
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)
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paddle.distributed.all_reduce(tmp, sync_op=True)
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paddle.distributed.wait(tmp)
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return gp
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def is_available() -> bool:
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"""
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Check whether the distributed package is available.
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Returns:
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Returns True if the distributed package is available, otherwise False.
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Examples:
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.. code-block:: pycon
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>>> import paddle
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>>> print(paddle.distributed.is_available())
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"""
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return core.is_compiled_with_dist()
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def _init_parallel_env(backend: _BackendList) -> None:
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store = core.create_or_get_global_tcp_store()
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global_env = _get_global_env()
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rank = global_env.rank
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world_size = global_env.world_size
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dev_id = global_env.device_id
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if backend == "gloo":
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core.CommContextManager.create_gloo_comm_context(
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store, "0", rank, world_size
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)
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elif backend == "nccl":
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endpoints_str = ""
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for endpoint in global_env.trainer_endpoints:
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endpoints_str += endpoint
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endpoints_str += "ring_id:{}".format("0")
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endpoints_str_hash = hashlib.md5(
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endpoints_str.encode(encoding='UTF-8')
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).hexdigest()
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core.CommContextManager.set_device_id(dev_id)
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core.CommContextManager.create_nccl_comm_context(
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store, "0", rank, world_size, endpoints_str_hash
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)
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elif backend == "xccl":
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dev_type = global_env.device_type
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paddle.device.set_device(f"{dev_type}:{dev_id}")
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core.CommContextManager.create_xccl_comm_context(
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store, "0", rank, world_size, dev_type
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)
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elif backend == "bkcl":
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endpoints_str = ""
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for endpoint in global_env.trainer_endpoints:
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endpoints_str += endpoint
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endpoints_str += "ring_id:{}".format("0")
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endpoints_str_hash = hashlib.md5(
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endpoints_str.encode(encoding='UTF-8')
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).hexdigest()
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core.CommContextManager.set_device_id(dev_id)
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core.CommContextManager.create_bkcl_comm_context(
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store, "0", rank, world_size, endpoints_str_hash
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)
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_shutdown_group_map_by_name = {}
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def _get_shutdown_group_map_by_name():
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global _shutdown_group_map_by_name
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return _shutdown_group_map_by_name
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def _update_shutdown_group_map_by_name(pg_name, group):
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global _shutdown_group_map_by_name
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_shutdown_group_map_by_name[pg_name] = group
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def _delete_shutdown_group_map_by_name(pg_name):
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global _shutdown_group_map_by_name
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del _shutdown_group_map_by_name[pg_name]
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def _clear_shutdown_group_map_by_name():
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global _shutdown_group_map_by_name
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_shutdown_group_map_by_name.clear()
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def shutdown_process_group(group: Group | None = None) -> None:
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shutdown_groups = _get_shutdown_group_map_by_name()
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if group is None:
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global _default_group_name
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for pg_name, pg in _get_group_map_by_name().items():
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if (
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pg.process_group is not None
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and pg_name not in shutdown_groups
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and pg_name != _default_group_name
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):
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pg.process_group.shutdown()
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_update_shutdown_group_map_by_name(pg_name, pg)
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else:
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if (
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group.process_group is not None
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and group.name not in shutdown_groups
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):
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group.process_group.shutdown()
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_update_shutdown_group_map_by_name(group.name, group)
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def restart_process_group(group: Group | None = None) -> None:
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shutdown_groups = _get_shutdown_group_map_by_name()
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if group is None:
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for pg in shutdown_groups.values():
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pg.process_group.restart()
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_clear_shutdown_group_map_by_name()
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else:
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if group.process_group is not None and group.name in shutdown_groups:
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group.process_group.restart()
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_delete_shutdown_group_map_by_name(group.name)
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