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SEQUENCE PACKAGE ANALYSIS: A New Natural Language Understanding Method for Intelligent Mining of Recordings of Doctor-Patient Interviews and Health-Related Blogs

机译:序列包分析:一种新的自然语言理解方法,用于智能挖掘医生访谈和与健康有关的博客

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摘要

Medical histories provide a rich resource for diagnoses and treatment. Similarly, consumers' blog postings on health-related topics offer unique data for medical researchers, practitioners, and pharmacologists. Nevertheless, speech and text analytic programs for mining recordings of patients' histories or consumers' blogs are compromised by the ambiguities, repetitions and ellipses in natural speech, which can be more pronounced when the speaker or blogger is discussing a medical problem. Conventional systems or programs limited to a set of key words and phrases cannot process speech as it actually occurs; if a speaker or blogger fails to use the word(s) found in the speech application's vocabulary, a poor statistical word match (or no match) is given. This paper shows how Sequence Package Analysis is informed by algorithms that can work with, rather than be hindered by, less than perfect natural speech for intelligent mining of doctor-patient recordings and blogs.
机译:医疗历史为诊断和治疗提供丰富的资源。同样,消费者对健康相关主题的博客帖子为医学研究人员,从业者和药剂学家提供了独特的数据。尽管如此,患者历史或消费者博客的致辞和文本分析计划的录音或消费者博客的录音受到自然语音中的歧义,重复和椭圆的损害,当扬声器或博主正在讨论医疗问题时可以更加宣称。常规系统或程序限制为一组关键词和短语不能在实际发生时处理语音;如果扬声器或博主未使用语音应用程序的词汇表中发现的单词,则给出差的统计单词匹配(或匹配)。本文展示了如何通过可以使用的算法通知序列包分析而不是受到阻碍的,而不是对医生录音和博客智能采矿的完善自然演讲。

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