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Speech-to-Text Summarization Using Automatic Phrase Extraction from Recognized Text

机译:使用自动从识别的文本中提取短语的语音到文本摘要

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摘要

This paper describes a summarization system that was developed in order to summarize news delivered orally. The system generates text summaries from input audio using three independent components: an automatic speech recognizer, a syntactic analyzer, and a summarizer. The absence of sentence boundaries in the recognized text complicates the summarization process. Therefore, we use a syntactic analyzer to identify continuous segments in the recognized text. We used 50 reference articles to perform our evaluation. The results of the proposed system were compared with the results of sentence summarization in the reference articles. The evaluation was performed using co-occurrence of n-grams in the reference and generated summaries, and by readers mark-ups. The readers marked two aspects of the summaries: readability and information relevance. Experiments confirm that the generated summaries have the same information value as the reference summaries. However, readers state that phrase summaries are hard to read without the whole sentence context.
机译:本文描述了一个摘要系统,该系统是为了总结口头传递的新闻而开发的。该系统使用三个独立的组件从输入音频中生成文本摘要:自动语音识别器,语法分析器和摘要器。在所识别的文本中不存在句子边界使摘要处理复杂化。因此,我们使用语法分析器来识别识别的文本中的连续段。我们使用了50篇参考文章来进行评估。将该系统的结果与参考文章中句子摘要的结果进行了比较。评估是通过在参考文献中同时使用n-gram和生成的摘要以及读者进行的标记来进行的。读者在摘要中标记了两个方面:可读性和信息相关性。实验证实,生成的摘要与参考摘要具有相同的信息值。但是,读者指出,如果没有整个句子的上下文,短语摘要将很难阅读。

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