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[3Pin1-36] Neural Headline Generation with Self-Training
Keywords:Summarization, Self-training, Neural Network
In this paper we propose a novel method which incorporates self-training into a sequence-to-sequence model in order to improve the accuracy of the headline generation task. Our model is based on neural network-based sequence-to-sequence learning with an attention mechanism and trained with approximately 100,000 labeled examples and 2,000,000 unlabeled examples. Through experiments, we show our proposal significantly improves the accuracy and works effectively.