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Techniques for Rapid and Robust Topic Identification of Conversational Telephone Speech

机译:对话电话语音的快速和强大主题识别技术

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In this paper, we investigate the impact of automatic speech recognition (ASR) errors on the accuracy of topic identification in conversational telephone speech. We present a modified TF-IDF feature weighting calculation that provides significant robustness under various recognition error conditions. For our experiments we take conversations from the Fisher corpus to produce 1-best and lattice outputs using a single recognizer tuned to run at various speeds. We use an SVM classifier to perform topic identification on the output. We observe classifiers incorporating confidence information to be significantly more robust to errors than those treating output as unweighted text.
机译:在本文中,我们调查了自动语音识别(ASR)误差对会话电话语音主题识别准确性的影响。我们提出了一个修改的TF-IDF功能加权计算,可在各种识别错误条件下提供重大的稳健性。对于我们的实验,我们将来自Fisher语料库的对话,以使用单个识别器调整以以各种速度运行的单个识别器产生1-Best和Lattice输出。我们使用SVM分类器在输出上执行主题标识。我们观察到置信信息的分类器比将其作为未加权文本的处理更加强大地更强大。

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