config.yaml 2.3 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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workspace: "models/match/dssm"
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dataset:
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- name: dataset_train
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  batch_size: 4
  type: QueueDataset
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  data_path: "{workspace}/data/train" 
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  data_converter: "{workspace}/synthetic_reader.py"
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- name: dataset_infer
  batch_size: 1
  type: QueueDataset
  data_path: "{workspace}/data/train"
  data_converter: "{workspace}/synthetic_evaluate_reader.py"
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hyper_parameters:
  optimizer:
    class: sgd
    learning_rate: 0.01
    strategy: async
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  trigram_d: 1000
  neg_num: 4
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  fc_sizes: [300, 300, 128]
  fc_acts: ['tanh', 'tanh', 'tanh']
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mode: train_runner
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# config of each runner.
# runner is a kind of paddle training class, which wraps the train/infer process.
runner:
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- name: train_runner
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  class: train
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  # num of epochs
  epochs: 4
  # device to run training or infer
  device: cpu
  save_checkpoint_interval: 2 # save model interval of epochs
  save_inference_interval: 4 # save inference
  save_checkpoint_path: "increment" # save checkpoint path
  save_inference_path: "inference" # save inference path
  save_inference_feed_varnames: ["query", "doc_pos"] # feed vars of save inference
  save_inference_fetch_varnames: ["cos_sim_0.tmp_0"] # fetch vars of save inference
  init_model_path: "" # load model path
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  print_interval: 2
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- name: infer_runner
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  class: infer
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  # device to run training or infer
  device: cpu
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  print_interval: 1
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  init_model_path: "increment/2" # load model path
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# runner will run all the phase in each epoch
phase:
- name: phase1
  model: "{workspace}/model.py" # user-defined model
  dataset_name: dataset_train # select dataset by name
  thread_num: 1
#- name: phase2
#  model: "{workspace}/model.py" # user-defined model
#  dataset_name: dataset_infer # select dataset by name
#  thread_num: 1