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Extracting accent information from Urdu speech for forensic speaker recognition

机译:从URDU演讲中提取重音信息进行法医扬声器识别

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This paper presents a new method for extraction of accent information from Urdu speech signals. Accent is used in speaker recognition system especially in forensic cases and plays a vital role in discriminating people of different groups, communities and origins due to their different speaking styles. The proposed method is based on Gaussian mixture model-universal background model (GMM-UBM), mel-frequency cepstral coefficients (MFCC), and a data augmentation (DA) process. The DA process appends features to base MFCC features and improves the accent extraction and forensic speaker recognition performances of GMM-UBM. Experiments are performed on an Urdu forensic speaker corpus. The experimental results show that the proposed method improves the equal error rate and the accuracy of GMM-UBM by 2.5 % and 3.7 %, respectively.
机译:本文提出了一种从URDU语音信号提取重音信息的新方法。口音用于发言者识别系统,特别是在法医案件中,在鉴别不同群体,社区和起源的人们歧视不同的讲话方式中起着至关重要的作用。该方法基于高斯混合模型 - 通用背景模型(GMM-UBM),熔融频率谱系数(MFCC)和数据增强(DA)过程。 DA过程附加到基本MFCC功能的功能,并提高了GMM-UBM的口径提取和法医扬声器识别性能。实验在Urdu法医扬声器语料库上进行。实验结果表明,该方法分别提高了22%和3.7%GMM-UBM的相等误差率和准确性。

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