Automatic Summarization for Academic Articles using Deep Learning and Reinforcement Learning with Viewpoints

Jinghong Li, Hatsuhiko Tanabe, Koichi Ota, Wen Gu, S. Hasegawa
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Abstract

The purpose of this research is to develop a Viewpoint Refinement in Automatic Summarization (VPRAS) system for research articles. The system will reflect viewpoints of survey to support surveys stage for researchers and students. We collect academic articles using web scraping technology and construct training data by combining sections and sentences through analysis of the article's PDF structure. We use machine learning techniques to classify sentences in Japanese articles into viewpoints. In addition to supervised learning, we introduce reinforcement learning and Dynamic Programming (DP) to extract important sentences for each viewpoint. Finally, we implemented an agent to automatically extract summary sentences based on a reward function.
基于深度学习和强化学习的学术文章自动摘要
本研究的目的是开发一种研究论文自动摘要(VPRAS)的观点提炼系统。该系统将反映调查的观点,以支持研究人员和学生的调查阶段。我们使用网络抓取技术收集学术文章,并通过分析文章的PDF结构,将章节和句子结合起来构建训练数据。我们使用机器学习技术将日语文章中的句子分类为观点。除了监督学习之外,我们还引入了强化学习和动态规划(DP)来提取每个观点的重要句子。最后,我们实现了一个基于奖励函数的智能体来自动提取总结句。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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