Multimodal Biometric System based Face-Iris Feature Level Fusion

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Author(s)

Muthana H. Hamd 1,* Marwa Y. Mohammed 1

1. Department of Computer Engineering, Al-Mustansirya University, Iraq

* Corresponding author.

DOI: https://doi.org/10.5815/ijmecs.2019.05.01

Received: 15 Feb. 2019 / Revised: 6 Mar. 2019 / Accepted: 21 Mar. 2019 / Published: 8 May 2019

Index Terms

Face-iris biometric, Fourier descriptors, Fusion, GLCM, LBP, PCA.

Abstract

This paper proposed feature level fusion technique to develop a robust multimodal human identification system. The humane face-iris traits are fused together to improve system accuracy in recognizing 40 persons taken from ORL and CASIA-V1 database. Also, low quality iris images of MMU-1 database are considered in this proposal for further test of recognition accuracy. The face-iris features are extracted using four comparative methods. The texture analysis methods like Gray Level Co-occurrence Matrix (GLCM) and Local Binary Pattern (LBP) are both gained 100% accuracy rate, while the Principle Component Analysis (PCA) and Fourier Descriptors (FDs) methods achieved 97.5% accuracy rate only.

Cite This Paper

Muthana H. Hamd, Marwa Y. Mohammed, "Multimodal Biometric System based Face-Iris Feature Level Fusion", International Journal of Modern Education and Computer Science(IJMECS), Vol.11, No.5, pp. 1-9, 2019.DOI: 10.5815/ijmecs.2019.05.01

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