D. Ben Ayed Mezghani, S. Zribi Boujelbene, N. Ellouze
언어
영어(ENG)
URL
https://www.earticle.net/Article/A147904
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원문정보
초록
영어
One of the central problems in the study of Support vector machine (SVM) is kernel selection, that’s based essentially on the problem of choosing a kernel function for a particular task and dataset. By contradiction to other machine learning algorithms, SVM focuses on maximizing the generalisation ability, which depends on the empirical risk and the complexity of the machine. In the following paper, we considered the problem of kernel selection of SVMs classifiers to achieve performance on text-independent speaker identification using the TIMIT corpus. We were focused on SVM trained using linear, polynomial and Radial Basic Function (RBF) kernels. A preliminary study has been made between SVM using the best choice of kernel and three other popular learning algorithms, namely Naive Bayes (NB), decision tree C4.5 and Multi Layer Perceptron (MLP). Results had revealed that SVM trained using polynomial kernel is the best choice for dealing with speaker identification tasks and that SVM is the best choice when compared to other algorithms.
목차
Abstract 1. Introduction 2. Speaker identification 3. Machine learning algorithms for speaker recognition 3.1. Support Vector Machine 3.2. Naive Bayes 3.3. Decision tree C4.5 3.4. Multi Layer Perceptron 4. Simulations 4.1. Speech Corpus 4.2. Front-End Processing and Feature Extraction 4.3. Classification 5. Results and discussion 5.1. Performance evaluation of SVM kernels for speaker identification task 5.2. Performance evaluation of SVM, NB, C4.5 and MLP for speaker identification task 6. Conclusion 7. References
D. Ben Ayed Mezghani [ Dept. Electrical Engineering at the National School of Engineer of Tunis National School of Engineer of Tunis (ENIT), Tunis – Tunisia ]
S. Zribi Boujelbene [ Dept. Electrical Engineering at the National School of Engineer of Tunis National School of Engineer of Tunis (ENIT), Tunis – Tunisia ]
N. Ellouze [ Dept. Electrical Engineering at the National School of Engineer of Tunis National School of Engineer of Tunis (ENIT), Tunis - Tunisia ]
보안공학연구지원센터(IJHIT) [Science & Engineering Research Support Center, Republic of Korea(IJHIT)]
설립연도
2006
분야
공학>컴퓨터학
소개
1. 보안공학에 대한 각종 조사 및 연구
2. 보안공학에 대한 응용기술 연구 및 발표
3. 보안공학에 관한 각종 학술 발표회 및 전시회 개최
4. 보안공학 기술의 상호 협조 및 정보교환
5. 보안공학에 관한 표준화 사업 및 규격의 제정
6. 보안공학에 관한 산학연 협동의 증진
7. 국제적 학술 교류 및 기술 협력
8. 보안공학에 관한 논문지 발간
9. 기타 본 회 목적 달성에 필요한 사업
간행물
간행물명
International Journal of Hybrid Information Technology
간기
격월간
pISSN
1738-9968
수록기간
2008~2016
십진분류
KDC 505DDC 605
이 권호 내 다른 논문 / International Journal of Hybrid Information Technology Vol.3 No.3