__init__.py 3.3 KB
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#   Copyright (c) 2020 PaddlePaddle Authors. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
#     http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.

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# TODO: define distributed api under this directory,
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from .base.role_maker import Role  # noqa: F401
from .base.role_maker import UserDefinedRoleMaker  # noqa: F401
from .base.role_maker import PaddleCloudRoleMaker  # noqa: F401
from .base.distributed_strategy import DistributedStrategy  # noqa: F401
from .base.fleet_base import Fleet  # noqa: F401
from .base.util_factory import UtilBase  # noqa: F401
from .dataset import DatasetBase  # noqa: F401
from .dataset import InMemoryDataset  # noqa: F401
from .dataset import QueueDataset  # noqa: F401
from .dataset import FileInstantDataset  # noqa: F401
from .dataset import BoxPSDataset  # noqa: F401
from .data_generator.data_generator import MultiSlotDataGenerator  # noqa: F401
from .data_generator.data_generator import MultiSlotStringDataGenerator  # noqa: F401
from . import metrics  # noqa: F401
from .base.topology import CommunicateTopology
from .base.topology import HybridCommunicateGroup  # noqa: F401
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__all__ = [  #noqa
    "CommunicateTopology", "UtilBase", "HybridCommunicateGroup",
    "MultiSlotStringDataGenerator", "UserDefinedRoleMaker",
    "DistributedStrategy", "Role", "MultiSlotDataGenerator",
    "PaddleCloudRoleMaker", "Fleet"
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]
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fleet = Fleet()
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_final_strategy = fleet._final_strategy
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_get_applied_meta_list = fleet._get_applied_meta_list
_get_applied_graph_list = fleet._get_applied_graph_list
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init = fleet.init
is_first_worker = fleet.is_first_worker
worker_index = fleet.worker_index
worker_num = fleet.worker_num
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node_num = fleet.node_num
rank = fleet.worker_index
nranks = fleet.worker_num
world_size = fleet.worker_num
# device id in current trainer
local_device_ids = fleet.local_device_ids
# device ids in world
world_device_ids = fleet.world_device_ids
# rank in node
local_rank = fleet.local_rank
rank_in_node = local_rank
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is_worker = fleet.is_worker
worker_endpoints = fleet.worker_endpoints
server_num = fleet.server_num
server_index = fleet.server_index
server_endpoints = fleet.server_endpoints
is_server = fleet.is_server
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util = UtilBase()
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barrier_worker = fleet.barrier_worker
init_worker = fleet.init_worker
init_server = fleet.init_server
run_server = fleet.run_server
stop_worker = fleet.stop_worker
distributed_optimizer = fleet.distributed_optimizer
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save_inference_model = fleet.save_inference_model
save_persistables = fleet.save_persistables
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save_cache_model = fleet.save_cache_model
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load_model = fleet.load_model
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minimize = fleet.minimize
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distributed_model = fleet.distributed_model
step = fleet.step
clear_grad = fleet.clear_grad
set_lr = fleet.set_lr
get_lr = fleet.get_lr
state_dict = fleet.state_dict
set_state_dict = fleet.set_state_dict
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shrink = fleet.shrink
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get_hybrid_communicate_group = fleet.get_hybrid_communicate_group
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distributed_scaler = fleet.distributed_scaler