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Automatic keyword selection for keyword search development and tuning

机译:自动关键字选择,用于关键字搜索的开发和调整

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In this paper, we investigate the problem of automatically selecting textual keywords for keyword search development and tuning on audio data for any language. Briefly, the method samples candidate keywords in the training data while trying to match a set of target marginal distributions for keyword features such as keyword frequency in the training or development audio, keyword length, frequency of out-of-vocabulary words, and TF-IDF scores. The method is evaluated on four IARPA Babel program base period languages. We show the use of the automatically selected keywords for the keyword search system development and tuning. We show also that search performance is improved by tuning the decision threshold on the automatically selected keywords.
机译:在本文中,我们研究了自动选择文本关键字以进行关键字搜索开发并调整任何语言的音频数据的问题。简而言之,该方法会在尝试匹配训练功能或发展音频中的关键字频率,关键字长度,词汇量和TF-关键字频率等关键字特征的一组目标边际分布时,对训练数据中的候选关键字进行采样IDF分数。该方法在四种IARPA Babel程序基期语言上进行了评估。我们展示了自动选择的关键字在关键字搜索系统开发和调整中的使用。我们还表明,通过调整自动选择的关键字的决策阈值,可以提高搜索性能。

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