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Read, Attend and Comment: A Deep Architecture for Automatic News Comment Generation

机译:阅读,参加和评论:自动新闻评论生成的深度架构

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Automatic news comment generation is a new testbed for techniques of natural language generation. In this paper, we propose a "read-attend-comment" procedure for news comment generation and formalize the procedure with a reading network and a generation network. The reading network comprehends a news article and distills some important points from it, then the generation network creates a comment by attending to the extracted discrete points and the news title. We optimize the model in an end-to-end manner by maximizing a variational lower bound of the true objective using the back-propagation algorithm. Experimental results on two datasets indicate that our model can significantly outperform existing methods in terms of both automatic evaluation and human judgment.
机译:自动新闻评论生成是一种新的测试平台,用于自然语言生成技术。在本文中,我们提出了一个“Read-参加评论”的新闻评论生成程序,并将程序正式化了阅读网络和一代网络。阅读网络理解新闻文章并蒸馏出一些重要的观点,然后通过参加提取的离散点和新闻标题来创建评论。我们通过使用反向传播算法最大化真实物镜的变差下限来优化模型以端到端的方式。两个数据集的实验结果表明,我们的模型可以在自动评估和人为判断方面显着优于现有方法。

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