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A system for spoken query information retrieval on mobile devices

机译:在移动设备上进行口头查询信息检索的系统

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With the proliferation of handheld devices, information access on mobile devices is a topic of growing relevance. This paper presents a system that allows the user to search for information on mobile devices using spoken natural-language queries. We explore several issues related to the creation of this system, which combines state-of-the-art speech-recognition and information-retrieval technologies. This is the first work that we are aware of which evaluates spoken query based information retrieval on a commonly available and well researched text database, the Chinese news corpus used in the National Institute of Standards and Technology (NIST)s TREC-5 and TREC-6 benchmarks. To compare spoken-query retrieval performance for different relevant scenarios and recognition accuracies, the benchmark queries-read verbatim by 20 speakers-were recorded simultaneously through three channels: headset microphone, PDA microphone, and cellular phone. Our results show that for mobile devices with high-quality microphones, spoken-query retrieval based on existing technologies yields retrieval precisions that come close to that for perfect text input (mean average precision 0.459 and 0.489, respectively, on TREC-6).
机译:随着手持设备的激增,移动设备上的信息访问成为越来越重要的话题。本文提出了一种系统,该系统允许用户使用口头自然语言查询在移动设备上搜索信息。我们探索了与创建此系统有关的几个问题,该系统结合了最新的语音识别和信息检索技术。这是我们知道的第一项工作,它评估了在一个通用的且经过充分研究的文本数据库(基于美国国家标准技术研究院(NIST)TREC-5和TREC- 6个基准。为了比较不同相关场景和识别准确度的语音查询检索性能,通过三个渠道同时记录了基准查询(逐字逐句逐20个说话者):耳机麦克风,PDA麦克风和蜂窝电话。我们的结果表明,对于具有高质量麦克风的移动设备,基于现有技术的语音查询检索产生的检索精度接近完美文本输入的检索精度(TREC-6的平均平均精度分别为0.459和0.489)。

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