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An Improved Approach to Open Set Text-Independent Speaker Identification (OSTI-SI)

机译:改进的开放式文本扬声器识别方法(OSTI-SI)

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This paper focuses on open set text independent speaker identification which is one of the most challenging subclass of Speaker recognition. The initial stage is similar to closed set speaker identification, where the distortion for each test voice against all train voices are determined. The distortions after normalization is set as decision criteria which eases the process of thresholding. The threshold variation which is mostly independent of dataset but dependent on the size of train data set and its values are quite similar for three datasets. The identification rate with balanced False Acceptance Rate (FAR) and False Rejection Rate (FRR) is 73-86%.
机译:本文重点介绍开放式文本独立扬声器识别,这是扬声器识别的最具挑战性的子类之一。初始阶段类似于封闭式扬声器识别,其中确定针对所有列车声音的每个测试语音的失真。归一化后的扭曲被设置为判定标准,这缓解了阈值处理的过程。对于三个数据集来说,大多数与数据集无关但依赖于列车数据集的大小的阈值变化以及其值非常相似。具有平衡假验收率(远)和假拒收率(FRR)的识别率为73-86%。

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