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Speaker Change Detection Based on a Weighted Distance Measure over the Centroid Model

机译:基于质心模型加权距离测度的说话人变化检测

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Speaker change detection involves the identification of the time indices of an audio stream, where the identity of the speaker changes. This paper proposes novel measures for speaker change detection over the centroid model, which divides the feature space into non-overlapping clusters for effective speaker-change comparison. The centroid model is a computationally-efficient variant of the widely-used mixture-distribution based background models for speaker recognition. Experiments on both synthetic and real-world data were performed; the results show that the proposed approach yields promising results compared with the conventional statistical measures.
机译:说话者变化检测涉及识别音频流的时间索引,其中说话者的身份发生变化。本文提出了一种针对质心模型的说话人变化检测的新方法,该方法将特征空间划分为不重叠的簇,以进行有效的说话人变化比较。质心模型是基于说话人识别的广泛使用的基于混合分布的背景模型的高效计算变量。进行了综合数据和真实数据的实验;结果表明,与常规统计方法相比,该方法产生了可喜的结果。

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