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Text independent voice based students attendance system under noisy environment using RASTA-MFCC feature

机译:使用RASTA-MFCC功能在嘈杂环境下基于文本的独立语音学生出勤系统

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This paper motivates the use of RASTA-MFCC (RelAtive SpecTrA-Mel Frequency Cepstral Coefficients) feature and GMM-UBM modeling for text independent voice based students' attendance system under noisy environment. MFCC has been identified as an efficient feature for identifying the speaker because it extracts speaker specific information. The performance of even best speaker identification system with MFCC feature degrades in uncontrolled communication environment. RASTA processing of speech improves the performance of identification system even in the presence of convolutional and additive noise. This paper combines the best of these two processes to yield RASTA-MFCC feature which is robust to noise and also contributes speaker dependent information to identify the speaker efficiently. GMM-UBM (Gaussian Mixture Model-Universal Background Model) modeling technique is used for its faster training and relatively easier updating of new speakers. Experimental result of 93.2% accuracy for Triangular filter bank and 94.5% accuracy for Gaussian filter bank are obtained for 50 speakers of MEPCO speech database in presence of additive and convolutive noise in the context of voice based students' attendance entry.
机译:本文鼓励在嘈杂的环境下,使用RASTA-MFCC(RelAtive SpecTrA-梅尔频率倒谱系数)功能和GMM-UBM建模来建立基于文本的独立语音学生出勤系统。 MFCC被认为是识别讲话者的有效功能,因为它可以提取讲话者特定的信息。在不受控制的通信环境中,即使具有MFCC功能的最佳说话人识别系统的性能也会下降。即使存在卷积和加性噪声,语音的RASTA处理也可以提高识别系统的性能。本文结合了这两个过程中的最佳方法来产生RASTA-MFCC功能,该功能具有强大的抗噪能力,并且还提供了与说话者相关的信息,可以有效地识别说话者。 GMM-UBM(高斯混合模型-通用背景模型)建模技术用于其更快的训练和相对更容易地更新新说话者的过程。在基于语音的学生出勤情况下,在存在加性和卷积性噪声的情况下,对于MEPCO语音数据库的50位说话者,三角滤波器组的准确度为93.2%,高斯滤波器组的准确度为94.5%。

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