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Diarization of Telephone Conversations Using Factor Analysis

机译:使用因素分析对电话对话进行数字化

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We report on work on speaker diarization of telephone conversations which was begun at the Robust Speaker Recognition Workshop held at Johns Hopkins University in 2008. Three diarization systems were developed and experiments were conducted using the summed-channel telephone data from the 2008 NIST speaker recognition evaluation. The systems are a Baseline agglomerative clustering system, a Streaming system which uses speaker factors for speaker change point detection and traditional methods for speaker clustering, and a Variational Bayes system designed to exploit a large number of speaker factors as in state of the art speaker recognition systems. The Variational Bayes system proved to be the most effective, achieving a diarization error rate of 1.0% on the summed-channel data. This represents an 85% reduction in errors compared with the Baseline agglomerative clustering system. An interesting aspect of the Variational Bayes approach is that it implicitly performs speaker clustering in a way which avoids making premature hard decisions. This type of soft speaker clustering can be incorporated into other diarization systems (although causality has to be sacrificed in the case of the Streaming system). With this modification, the Baseline system achieved a diarization error rate of 3.5% (a 50% reduction in errors).
机译:我们报告了在2008年在约翰·霍普金斯大学举行的健壮的演讲者识别研讨会上开始的电话对话中的演讲者二值化工作。使用2008年NIST演讲者识别评估中的总通道电话数据,开发了三个二元化系统并进行了实验。这些系统是基线凝聚聚类系统,使用说话人因素进行说话人变化点检测的流媒体系统和用于说话人聚类的传统方法,以及设计为利用最先进的说话人识别功能来利用大量说话人因素的Variational Bayes系统。系统。事实证明,变分贝叶斯系统是最有效的,在总通道数据上实现了1.0%的误差。与基准聚集集群系统相比,这意味着错误减少了85%。可变贝叶斯方法的一个有趣的方面是,它以避免做出过早的艰难决定的方式隐式执行了说话人聚类。这种类型的软扬声器群集可以合并到其他数字化系统中(尽管在流式传输系统中必须牺牲因果关系)。通过此修改,基线系统实现了3.5%的误差误差率(误差减少了50%)。

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