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Improved text-independent speaker identification system for real time applications

机译:改进的与文本无关的说话人识别系统,用于实时应用

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Speaker identification identifies the speaker among a set of users by matching against a set of voiceprints. In speaker identification, the identification time depends on the number of feature vectors, their dimensionality and the number of speakers. In this paper, text independent speaker identification model is developed by taking in MFCCs with VQ to obtain pressed feature vectors without losing much information, and the numbers of speakers are reduced in the test by gender detection algorithm. Gaussian Mixture Model (GMM) is used a modeling technique. Results show that proposed approach always yields better improvements in accuracy and brings almost 50% reduces in time processing.
机译:说话者识别通过与一组声纹匹配来在一组用户中识别说话者。在说话者识别中,识别时间取决于特征向量的数量,其维数和说话者的数量。本文通过使用带有VQ的MFCC来开发文本无关的说话人识别模型,以在不损失太多信息的情况下获得按下的特征向量,并且通过性别检测算法在测试中减少了说话人的数量。高斯混合模型(GMM)用于建模技术。结果表明,所提出的方法始终可以提高精度,并减少50%的时间处理。

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