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Performance Evaluation of Infrared and Visible Image Fusion Algorithms for Face Recognition

机译:对识别的红外和可见图像融合算法的性能评估

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摘要

Fusion of infrared and visible image is a potential solution to improve face recognition performance. In this paper, we propose a new fusion method based on singular value decomposition (SVD) and apply it to multiple spectrum face recognition. The performance of the proposed SVD-based fusion method is compared with that of average fusion, Laplacian Pyramid Decomposition (LPD) based fusion and Discrete Wavelet Transform (DWT) based fusion methods. The performances of the four image fusion methods for face recognition are analyzed by statistical experiments and the results show that the SVD-based fusion method is better in most conditions.
机译:红外和可见图像的融合是提高人脸识别性能的潜在解决方案。在本文中,我们提出了一种基于奇异值分解(SVD)的新融合方法,并将其应用于多谱面识别。基于SVD的融合方法的性能与平均融合,基于Laplacian金字塔分解(LPD)的融合和离散小波变换(DWT)的融合方法进行了比较。通过统计实验分析了对面部识别的四个图像融合方法的性能,结果表明,基于SVD的熔融方法在大多数条件下更好。

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