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Relational Summarization for Corpus Analysis

机译:语料库分析的关系总结

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摘要

This work introduces a new problem, relational summarization, in which the goal is to generate a natural language summary of the relationship between two lexical items in a corpus, without reference to a knowledge base. Motivated by the needs of novel user interfaces, we define the task and give examples of its application. We also present a new query-focused method for finding natural language sentences which express relationships. Our method allows for summarization of more than two times more query pairs than baseline relation extractors, while returning measurably more readable output. Finally, to help guide future work, we analyze the challenges of relational summarization using both a news and a social media corpus.
机译:这项工作引入了一个新问题,即关系汇总,其目的是在不参考知识库的情况下生成语料库中两个词汇项目之间关系的自然语言汇总。受新颖用户界面需求的驱使,我们定义了任务并给出了其应用示例。我们还提出了一种新的针对查询的方法,用于查找表达关系的自然语言句子。我们的方法允许汇总的查询对数量是基线关系提取器的两倍以上,同时返回的可读性更高。最后,为了帮助指导未来的工作,我们使用新闻和社交媒体语料库来分析关系汇总的挑战。

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