依赖词的阿拉伯语说话人自动识别系统

S. S. Al-Dahri, Y.H. Al-Jassar, Y. Alotaibi, M. Alsulaiman, K. Abdullah-Al-Mamun
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引用次数: 25

摘要

自动说话人识别是计算机语音和说话人识别领域的难点之一。说话人识别是根据语音信号的说话人相关特征自动识别说话人的生物识别过程。目前,语音识别系统与指纹、视网膜扫描等其他生物识别技术一样,是验证个人身份的重要需求。基于语音的识别允许对用户进行现场和远程访问。本研究从说话人识别问题的角度对说话人识别系统进行了研究。它是基于语音的用户界面的重要组成部分。这项研究的目的是开发一种能够从他或她的讲话样本中识别个人的系统。阿拉伯语是一种闪族语言,不同于英语等欧洲语言。我们的系统是基于阿拉伯语的。我们选择使用阿拉伯语孤立词/ns10 as10 cs10 as10 ms10//[unk]/作为测试话语的单个关键字来处理单词依赖系统。之所以这样做是因为/ns10 as10 cs10 as10 ms10//[unk]/这个词主要由阿拉伯语使用者使用。使用MFCC提取语音特征。使用HTK实现基于音素HMM的说话人识别模块。设计的阿拉伯语说话人自动识别系统包含100个说话人,识别正确率达到96.25%。
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A Word-Dependent Automatic Arabic Speaker Identification System
Automatic speaker recognition is one of the difficult tasks in the field of computer speech and speaker recognition. Speaker recognition is a biometric process of automatically recognizing who is speaking on the basis of speaker dependent features of the speech signal. Currently, speaker recognition system is an important need for authenticating the personal like other biometrics such as finger prints and retinal scans. Speech based recognition permits both on site and remote access to the user. In this research, speaker identification system is investigated from the speaker recognition problem point of view. It is an important component of a speech-based user interface. The aim of this research is to develop a system that is capable of identifying an individual from a sample of his or her speech. Arabic language is a semitic language that differs from European languages such as English. Our system is based on Arabic speech. We have chosen to work on a word-dependent system using the Arabic isolated word /ns10 as10 cs10 as10 ms10//[unk]/ a single keyword for the test utterance. This choice has been made because the word /ns10 as10 cs10 as10 ms10//[unk]/ is mostly used by the Arabic speakers. Speech features are extracted using MFCC. The HTK is used to implement the speaker identification module with phoneme based HMM. The designed automatic Arabic speaker identification system contains 100 speakers and it achieved 96.25% accuracy for recognizing the correct speaker.
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