A Proposed Speaker Recognition Method Based on Long-Term Voice Features and Fuzzy Logic | ||
Engineering and Technology Journal | ||
Article 1, Volume 39, 1B, March 2021, Pages 1-10 PDF (766.63 K) | ||
DOI: 10.30684/etj.v39i1B.343 | ||
Authors | ||
Iman H. Hadi* 1; Alia K. Abdul-Hassan2 | ||
1GSCOM, Baghdad, Iraq. iman.h.1439@gmail.com. | ||
2Computer Sciences Department, University of Technology, Baghdad, Iraq. 110018@uotechnology.edu.iq. | ||
Abstract | ||
Speaker recognition depends on specific predefined steps. The most important steps are feature extraction and features matching. In addition, the category of the speaker voice features has an impact on the recognition process. The proposed speaker recognition makes use of biometric (voice) attributes to recognize the identity of the speaker. The long-term features were used such that maximum frequency, pitch and zero crossing rate (ZCR). In features matching step, the fuzzy inner product was used between feature vectors to compute the matching value between a claimed speaker voice utterance and test voice utterances. The experiments implemented using (ELSDSR) data set. These experiments showed that the recognition accuracy is 100% when using text dependent speaker recognition. | ||
Keywords | ||
Speaker identity; voice; frequency features; Fuzzy Vector | ||
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