DocumentCode
2664911
Title
Hierarchical speaker identification using speaker clustering
Author
Sun, Bing ; Liu, Wenju ; Zhong, Qiuhai
Author_Institution
Nat. Lab. of Pattern Recognition, Chinese Acad. of Sci., Beijing, China
fYear
2003
fDate
26-29 Oct. 2003
Firstpage
299
Lastpage
304
Abstract
We explore an approach to speaker identification called speaker clustering in the GMM-based speaker recognition system in order to reduce the computational complexity. The ISODATA algorithm adapted for our purpose works well when we cluster speakers whose acoustic characteristics are similar to a distance measure. The time spent on HSI (hierarchical speaker identification) is approximately 30.3 percent more than that spent on CSI (conventional speaker identification) when the number of registered speakers is 40 in our experiments. Increasing of the number of speakers decreases the time spent on HSI compared with CSI. It is shown that this approach can improve the speed of the speaker identification system.
Keywords
computational complexity; pattern clustering; speaker recognition; GMM-based speaker recognition system; ISODATA algorithm; acoustic characteristics; computational complexity; conventional speaker identification; hierarchical speaker identification; speaker clustering; Acoustic measurements; Automation; Clustering algorithms; Computational complexity; Laboratories; Loudspeakers; Probability; Speaker recognition; Speech processing; Speech recognition;
fLanguage
English
Publisher
ieee
Conference_Titel
Natural Language Processing and Knowledge Engineering, 2003. Proceedings. 2003 International Conference on
Conference_Location
Beijing, China
Print_ISBN
0-7803-7902-0
Type
conf
DOI
10.1109/NLPKE.2003.1275917
Filename
1275917
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