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计算机工程 ›› 2018, Vol. 44 ›› Issue (11): 129-134. doi: 10.19678/j.issn.1000-3428.0049075

• 安全技术 • 上一篇    下一篇

联合HMM-UBM与RVM的声纹密码识别算法

胡志隆1a,文畅1b,谢凯1a,贺建飚2   

  1. 1.长江大学 a.电子信息学院; b.计算机科学学院,湖北 荆州 434023; 2.中南大学 信息科学与工程学院,长沙 410083
  • 收稿日期:2017-10-25 出版日期:2018-11-15 发布日期:2018-11-15
  • 作者简介:胡志隆(1994—),男,硕士,主研方向为密码技术、图形图像处理;文畅(通信作者),讲师、硕士;谢凯,教授、博士;贺建飚,副教授、博士。
  • 基金资助:

    国家自然科学基金(61272147);湖北省教育厅科学技术研究计划指导性项目(B2015446)

Voiceprint Password Recognition Algorithm Fusing with HMM-UBM and RVM

HU Zhilong 1a,WEN Chang 1b,XIE Kai 1a,HE Jianbiao 2   

  1. 1a.School of Electronic Information; 1b.School of Computer Science,Yangtze River University,Jingzhou,Hubei 434023,China; 2.College of Information Science and Engineering,Central South University,Changsha 410083,China
  • Received:2017-10-25 Online:2018-11-15 Published:2018-11-15

摘要: 针对声纹密码识别中声纹文本信息利用率低和噪音干扰的问题,提出隐马尔科夫模型-通用背景模型(HMM-UBM)融合相关向量机(RVM)的声纹识别算法。利用HMM-UBM对语音信号进行时序建模,使用RVM学习得到每位注册话者语音的分类信息。通过对待识别话者建立HMM模型,并将RVM作为分类器进行判决决策得到分类结果。实验结果表明,与GMM-UBM算法和GMM-SVM算法相比,在无噪声环境下,该算法错误接收概率降低7%~9%,识别正确率提高4%~5%,在低信噪比环境下,其识别正确率提高5%~12%。

关键词: 声纹识别, 隐马尔科夫模型, 通用背景模型, 相关向量机, 语音信号

Abstract: Considering shortcomings of noise interference and low utilization in voiceprint recognition,a voiceprint recognition algorithm which is based on Hidden Markov Model-Universal Background Model(HMM-UBM) and Relevant Vector Machine(RVM) is proposed.The algorithm uses HMM-UBM to model speech signals in time sequence,and learn the classified information of each registered speaker by using RVM.It is established the HMM model for the speaker who needs to be identified,and the results of classification is obtained by using RVM as classifier.Experimental results show that compared with the GMM-UBM algorithm and GMM-SVM algorithm in a noiseless environment,the probability of error acceptance of proposed algorithm is reduced by 7%~9% and the accuracy of recognition is improved by 4%~5%.In low SNRR environment,the accuracy of recognition is improved by 5%~12%.

Key words: voiceprint recognition, Hidden Markov Model(HMM), Universal Background Model(UBM), Relevance Vector Machine(RVM), speech signal

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