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Code for the EMNLP 2019 paper "Span-based Hierarchical Semantic Parsing for Task-Oriented Dialog"

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Span-based Hierarchical Semantic Parsing for Task-Oriented Dialog

This is the codebase for the paper

Panupong Pasupat, Sonal Gupta, Karishma Mandyam, Rushin Shah, Mike Lewis, Luke Zettlemoyer.
Span-based Hierarchical Semantic Parsing for Task-Oriented Dialog.
EMNLP, 2019

Dependencies

Basic Usage

  • Training with the basic model (no edge scores) on debug data:

    ./main.py train configs/base.yml configs/data/artificial-chain.yml \
      configs/model/embedder-lstm.yml configs/model/span-node.yml

    This will train the model on the training data and evaluate on the development data. The results will be saved to out/___.exec/ where ___ is some number. The results contain the final config file, saved models, and predictions.

  • The out/__.exec/__.meta metadata file stores the best accuracy and the epoch for that accuracy. To dump the metadata, use ./dump-meta.py out/__.exec/__.meta.

  • To dump the predictions of a trained model in, say, out/42.exec/14.model on the test data:

    ./main.py test out/42.exec/config.json -l out/42.exec/14

Configs

  • To use the real training data (TOP dataset), change the data config to configs/data/top.yml.

  • To use edge scores, change the model config to configs/model/span-edge.yml.

  • To use the BERT model, change both the data config and embedder config to the BERT counterparts (artificial-chain.yml > artificial-chain-bert.yml, top.yml > top-bert.yml, embedder-lstm.yml > embedder-bert.yml)

  • The training accuracy will be incorrect because the decoder is not run during training. To turn on decoding during training, add

    -c "{"model": {"decoder": {"punt_on_training": false}}}"`

    to the command line.

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Code for the EMNLP 2019 paper "Span-based Hierarchical Semantic Parsing for Task-Oriented Dialog"

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