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Unsupervised speaker change detection using probabilistic pattern matching

机译:使用概率模式匹配进行无监督的说话人变化检测

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This letter presents an investigation into the use of a probabilistic pattern matching approach for detecting speaker changes in audio streams. The experiments are conducted using clean speech as well as broadcast news material. It is shown that, in the proposed approach, the use of bilateral scoring is considerably more effective than unilateral scoring. Appropriate score normalization methods are considered in the study. It is observed that in all the cases, the bilateral scoring approach outperforms the currently popular method of Bayesian information criterion (BIC) for speaker change detection. This letter discusses the principles of the proposed approach and details the experimental investigations.
机译:这封信提出了对使用概率模式匹配方法来检测音频流中扬声器变化的研究。实验是使用干净的语音以及广播新闻材料进行的。结果表明,在建议的方法中,使用双边评分比单边评分要有效得多。在研究中考虑适当的分数归一化方法。可以看出,在所有情况下,双边计分方法都优于目前流行的用于说话人变化检测的贝叶斯信息标准(BIC)方法。这封信讨论了提出的方法的原理,并详细介绍了实验研究。

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