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Partial speech sentence matching for personal calendar information retrieval

机译:用于个人日历信息检索的部分语音句子匹配

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The paper describes a new partial matching algorithm to retrieve speech information from a speech database by spoken sentence query. The similarity between two partial matching sentences is evaluated by a new algorithm called column-based row-based (CBRB) evaluation. This feature-matching method does not need a complex language model, so the system is language independent. Moreover, the proposed approach does not involve a large-vocabulary recognizer, which can heavily load a system, so the proposed approach greatly reduces the computational burden, and is highly appropriate for handheld devices. Finally, experiments were conducted for a personal speech calendar and the results show that our system can successfully evaluate the similarity between database sentences and a query sentence.
机译:本文描述了一种新的部分匹配算法,该算法通过口头句子查询从语音数据库中检索语音信息。两个局部匹配语句之间的相似性通过一种称为基于列的基于行(CBRB)评估的新算法进行评估。这种功能匹配方法不需要复杂的语言模型,因此系统是独立于语言的。此外,所提出的方法不涉及大词汇量的识别器,后者会给系统带来沉重的负担,因此所提出的方法大大降低了计算负担,非常适合于手持设备。最后,针对个人语音日历进行了实验,结果表明我们的系统可以成功评估数据库句子和查询句子之间的相似性。

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