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CNN/Daily Mail Reading Comprehension Task

Code for the paper:

A Thorough Examination of the CNN/Daily Mail Reading Comprehension Task.

Dependencies

  • Python 2.7
  • Theano >= 0.7
  • Lasagne 0.2.dev1

Datasets

Usage

Training

    THEANO_FLAGS=mode=FAST_RUN,device=gpu,floatX=float32
    python main.py --train_file /u/nlp/data/deepmind-qa/cnn/train.txt
                   --dev_file /u/nlp/data/deepmind-qa/cnn/dev.txt
                   --embedding_file /u/nlp/data/deepmind-qa/word-embeddings/glove.6B.100d.txt

Hyper-parameters

  • relabeling: default is True.
  • hidden_size: default is 128.
  • bidir: default is True.
  • num_layers: default is 1.
  • rnn_type: default is "gru".
  • att_func: default is "bilinear".
  • batch_size: default is 32.
  • num_epoches: default is 100.
  • eval_iter: default is 100.
  • dropout_rate: default is 0.2.
  • optimizer: default is "sgd".
  • learning_rate: default is 0.1.
  • grad_clipping: default is 10.

Reference

    @inproceedings{chen2016thorough,
        title={A Thorough Examination of the CNN/Daily Mail Reading Comprehension Task},
        author={Chen, Danqi and Bolton, Jason and Manning, Christopher D.},
        booktitle={Association for Computational Linguistics (ACL)},
        year={2016}
    }

License

MIT

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