首页> 外文会议>ACM workshop on searching spontaneous conversational speech 2010 >Novel Methods for Query Selection and Query Combination in Query-By-Example Spoken Term Detection
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Novel Methods for Query Selection and Query Combination in Query-By-Example Spoken Term Detection

机译:例题查询中的查询选择和查询组合新方法

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Query-by-example (QbE) spoken term detection (STD) is necessary for low-resource scenarios where training material is hardly available and word-based speech recognition systems cannot be employed. We present two novel contributions to QbE STD: the first introduces several criteria to select the optimal example used as query throughout the search system. The second presents a novel feature level example combination to construct a more robust query used during the search. Experiments, tested on with-in language and cross-lingual QbE STD setups, show a significant improvement when the query is selected according to an optimal criterion over when the query is selected randomly for both setups and a significant improvement when several examples are combined to build the input query for the search system compared with the use of the single best example. They also show comparable performance to that of a state-of-the-art acoustic keyword spotting system.
机译:对于资源匮乏的情况,其中很难获得培训材料并且无法使用基于单词的语音识别系统,需要通过示例查询(QbE)口语检测(STD)。我们为QbE STD提出了两个新颖的贡献:第一个介绍了几个标准,以选择在整个搜索系统中用作查询的最佳示例。第二个提出了新颖的功能级别示例组合,以构建搜索过程中使用的更强大的查询。在对同语言和跨语言QbE STD设置进行测试的实验中,根据最佳标准选择查询时的结果表明,与同时针对这两种设置随机选择查询时相比,有了显着的改进,而将几个示例组合为与使用单个最佳示例相比,构建搜索系统的输入查询。它们还表现出与最先进的声学关键词识别系统相当的性能。

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