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Keyphrase Annotation with Graph Co-Ranking

机译:图共同排名的关键字注释

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Keyphrase annotation is the task of identifying textual units that represent the main content of a document. Keyphrase annotation is either carried out by extracting the most important phrases from a document, keyphrase extraction, or by assigning entries from a controlled domain-specific vocabulary, keyphrase assignment. Assignment methods are generally more reliable. They provide better-formed keyphrases, as well as keyphrases that do not occur in the document. But they are often silent on the contrary of extraction methods that do not depend on manually built resources. This paper proposes a new method to perform both keyphrase extraction and keyphrase assignment in an integrated and mutual reinforcing manner. Experiments have been carried out on datasets covering different domains of humanities and social sciences. They show statistically significant improvements compared to both keyphrase extraction and keyphrase assignment state-of-the art methods.
机译:关键字注释是识别代表文档主要内容的文本单元的任务。可以通过从文档中提取最重要的短语,提取关键短语来进行关键短语注释,或者通过从受控的领域特定词汇,关键短语分配中分配条目来进行关键短语注释。分配方法通常更可靠。它们提供了格式更好的关键字短语,以及文档中未出现的关键字短语。但是,对于提取方法不依赖于手动构建的资源,他们通常保持沉默。本文提出了一种新的方法,可以以一种既相互补充又相互补充的方式来执行关键字短语的提取和关键字短语的分配。已经对涵盖人文和社会科学不同领域的数据集进行了实验。与关键字短语提取和关键字短语分配的最新技术相比,它们显示出统计上显着的改进。

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