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Key Phrase Extraction of Lightly Filtered Broadcast News

机译:轻微滤波广播新闻的关键词提取

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This paper explores the impact of light filtering on automatic key phrase extraction (AKE) applied to Broadcast News (BN). Key phrases are words and expressions that best characterize the content of a document. Key phrases are often used to index the document or as features in further processing. This makes improvements in AKE accuracy particularly important. We hypothesized that filtering out marginally relevant sentences from a document would improve AKE accuracy. Our experiments confirmed this hypothesis. Elimination of as little as 10% of the document sentences lead to a 2% improvement in AKE precision and recall. AKE is built over MAUI toolkit that follows a supervised learning approach. We trained and tested our AKE method on a gold standard made of 8 BN programs containing 110 manually annotated news stories. The experiments were conducted within a Multimedia Monitoring Solution (MMS) system for TV and radio news/programs, running daily, and monitoring 12 TV and 4 radio channels.
机译:本文探讨了光滤波对应用于广播新闻(BN)的自动关键短语提取(AKE)的影响。关键短语是最能表现文档内容的单词和表达式。主要短语通常用于在进一步处理中索引文档或作为特征。这使得AKE准确性特别重要的改进。我们假设从文件中过滤掉略微相关的句子将提高AKE准确性。我们的实验证实了这一假设。消除了10%的文件句子导致AKE精密和召回的2%提高。艾克是由毛伊世工具包建造的,遵循一个监督的学习方法。我们培训并测试了我们的AKE方法,并在金标标准上由包含110个手动注释的新闻故事制成的金标。实验是为电视和电台的新闻/节目的多媒体监控解决方案(MMS)的系统内进行,每日运行,并监测12电视和4个的无线电信道。

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