Speaker verification using excitation source information

被引:0
|
作者
Debadatta Pati
S. R. Mahadeva Prasanna
机构
[1] Indian Institute of Technology Guwahati,Department of Electronics and Electrical Engineering
关键词
Speaker-specific excitation information; Subsegmental; Segmental; Suprasegmental; LP residual; LF model;
D O I
10.1007/s10772-012-9137-5
中图分类号
学科分类号
摘要
In this work we develop a speaker recognition system based on the excitation source information and demonstrate its significance by comparing with the vocal tract information based system. The speaker-specific excitation information is extracted by the subsegmental, segmental and suprasegmental processing of the LP residual. The speaker-specific information from each level is modeled independently using Gaussian mixture modeling—universal background model (GMM-UBM) modeling and then combined at the score level. The significance of the proposed speaker recognition system is demonstrated by conducting speaker verification experiments on the NIST-03 database. Two different tests, namely, Clean test and Noisy test are conducted. In case of Clean test, the test speech signal is used as it is for verification. In case of Noisy test, the test speech is corrupted by factory noise (9 dB) and then used for verification. Even though for Clean test case, the proposed source based speaker recognition system still provides relatively poor performance than the vocal tract information, its performance is better for Noisy test case. Finally, for both clean and noisy cases, by providing different and robust speaker-specific evidences, the proposed system helps the vocal tract system to further improve the overall performance.
引用
收藏
页码:241 / 257
页数:16
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