DocumentCode :
735055
Title :
Gender-dependent feature extraction for speaker recognition
Author :
Lantian Li ; Zheng, Thomas Fang
Author_Institution :
Dept. of Comput. Sci. & Technol., Tsinghua Univ., Beijing, China
fYear :
2015
fDate :
12-15 July 2015
Firstpage :
509
Lastpage :
513
Abstract :
Gender information is believed helpful for speaker recognition. In GMM-UBM based speaker recognition, the use of gender information is mostly on a basis of constructing gender-dependent (GD) UBMs instead of extracting GD features. However, theoretical analysis and experimental observations show that females and males differ quite a lot in the feature domain of speech signal, including F0, formant, spectrum and cepstrum. In this paper, further analysis and experiments have been done to explore the differences between females and males. Afterwards, a GD MFCC feature extraction is proposed. In this method, the frame length of MFCC extraction is gender dependent, in other words the resolution for both the DFT analysis and hence the MFCC feature extraction is gender dependent. Experimental results demonstrate that compared with the gender-independent (GI) feature extraction, the GD feature extraction can achieve relative EER reductions of 21.7% and 12.2% for female and male speakers evaluations, respectively.
Keywords :
cepstral analysis; discrete Fourier transforms; feature extraction; speaker recognition; DFT analysis; EER reduction; GD MFCC feature extraction; GD feature; GI feature extraction; GMM-UBM based speaker recognition; MFCC extraction; female speaker evaluation; gender dependent; gender information; gender-dependent UBM; gender-dependent feature extraction; gender-independent feature extraction; speech signal; Decision support systems; Indexes; GMM-UBM; MFCC; Speaker recognition; gender-dependent feature extraction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal and Information Processing (ChinaSIP), 2015 IEEE China Summit and International Conference on
Conference_Location :
Chengdu
Type :
conf
DOI :
10.1109/ChinaSIP.2015.7230455
Filename :
7230455
Link To Document :
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