Exploiting Wavelet Transform, Principal Component Analysis, Support Vector Machine, and K-Nearest Neighbors for Partial Face Recognition

Alhabib, Mustafa H. Mohammed and Al-Dabagh, Mustafa Zuhaer Nayef and AL-Mukhtar, Firas H. and Hussein, Hussein Ibrahim (2019) Exploiting Wavelet Transform, Principal Component Analysis, Support Vector Machine, and K-Nearest Neighbors for Partial Face Recognition. Cihan University-Erbil Scientific Journal, 3 (2). pp. 80-84. ISSN 2519-6979

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Abstract

Facial analysis has evolved to be a process of considerable importance due to its consequence on the safety and security, either individually or generally on the society level, especially in personal identification. The paper in hand applies facial identification on a facial image dataset by examining partial facial images before allocating a set of distinctive characteristics to them. Extracting the desired features from the input image is achieved by means of wavelet transform. Principal component analysis is used for feature selection, which specifies several aspects in the input image; these features are fed to two stages of classification using a support vector machine and K-nearest neighborhood to classify the face. The images used to test the strength of the suggested method are taken from the well-known (Yale) database. Test results showed the eligibility of the system when it comes to identify images and assign the correct face and name.

Item Type: Article
Uncontrolled Keywords: K-nearest neighborhood, Partial face recognition, Principal component analysis, Support vector machine, Wavelet transform
Subjects: Q Science > QA Mathematics > QA76 Computer software
T Technology > TA Engineering (General). Civil engineering (General)
Divisions: Department of Communication and Computer Engineering > Research papers
Depositing User: ePrints Depositor
Date Deposited: 02 Oct 2024 11:55
Last Modified: 02 Oct 2024 11:55
URI: https://eprints.cihanuniversity.edu.iq/id/eprint/633

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