Generating Natural Language Summaries from Multiple On-Line Sources

Dragomir R. Radev, K. McKeown
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引用次数: 484

Abstract

We present a methodology for summarization of news about current events in the form of briefings that include appropriate background (historical) information. The system that we developed, SUMMONS, uses the output of systems developed for the DARPA Message Understanding Conferences to generate summaries of multiple documents on the same or related events, presenting similarities and differences, contradictions, and generalizations among sources of information. We describe the various components of the system, showing how information from multiple articles is combined, organized into a paragraph, and finally, realized as English sentences. A feature of our work is the extraction of descriptions of entities such as people and places for reuse to enhance a briefing.
从多个在线资源生成自然语言摘要
我们提出了一种方法,以简报的形式总结当前事件的新闻,其中包括适当的背景(历史)信息。我们开发的系统,传票,使用为DARPA消息理解会议开发的系统的输出来生成关于相同或相关事件的多个文档的摘要,呈现信息来源之间的异同、矛盾和概括。我们描述了系统的各个组成部分,展示了如何将来自多个文章的信息组合起来,组织成一个段落,最后实现为英语句子。我们工作的一个特点是提取实体的描述,如人员和地点,以便重用,以增强简报。
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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