DocumentCode :
3605108
Title :
Speaker Identification With Whispered Speech for the Access Control System
Author :
Jia-Ching Wang ; Yu-Hao Chin ; Wen-Chi Hsieh ; Chang-Hong Lin ; Ying-Ren Chen ; Siahaan, Ernestasia
Author_Institution :
Dept. of Comput. Sci. & Inf. Eng., Nat. Central Univ., Taoyuan, Taiwan
Volume :
12
Issue :
4
fYear :
2015
Firstpage :
1191
Lastpage :
1199
Abstract :
This work presents an access control system, which is a speaker identification system based on whispered speech. Speaker identification is a main function of an access control system. Hence, a novel speaker identification system using instantaneous frequencies is proposed. The input speech signals pass through both signal independent and signal dependent filters firstly. Then, we derive the signal´s instantaneous frequencies by applying the Hilbert transform. The analyzed instantaneous frequencies are proceeded to be modeled as probability density models. We use these probability density models as the feature in the proposed speaker identification system. In this work, we compare the use of parametric and nonparametric probability density estimation for instantaneous frequency modeling. Furthermore, we propose an approximated probability product kernel support vector machine (APPKSVM). In the APPKSVM, Riemann sum is applied in approximating the probability product kernel. The whisper sounds from the CHAIN speech corpus were used in the experiments. Results of the experiments show the superiority of the proposed speaker identification system.
Keywords :
Hilbert transforms; authorisation; filtering theory; speaker recognition; statistical analysis; support vector machines; APPKSVM; CHAIN speech corpus; Hilbert transform; Riemann sum; access control system; approximated probability product kernel support vector machine; instantaneous frequency; nonparametric probability density estimation; parametric probability density estimation; probability density model; signal dependent filters; signal independent filters; speaker identification system; whispered speech; Access control; Empirical mode decomposition; Speaker recognition; Speech; Support vector machines; Transforms; Empirical mode decomposition (EMD); Hilbert–Huang transform; instantaneous frequency; speaker recognition; whispered speech;
fLanguage :
English
Journal_Title :
Automation Science and Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1545-5955
Type :
jour
DOI :
10.1109/TASE.2015.2467311
Filename :
7229351
Link To Document :
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