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Integrating GWTM and BAT algorithm for face recognition in low-resolution images

机译:整合GWTM和BAT算法在低分辨率图像中进行人脸识别

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摘要

In biometrics, face recognition is one of the important identification methods with various applications such as, video surveillance, defence, human/computer interactions and many more. The current face recognition systems perform well using the frontal images with high resolution. In contrast, the utilisation of low-resolution (LR) images degrades the performance of face recognition systems. Hence, this paper integrates the Gabor filter + wavelet + texture (GWTM) operator and the BAT algorithm to increase the performance, while deploying the LR images. The proposed algorithm integrates the uniqueness of Gabor features, the robustness of local features and the wavelet features to handle the inter-person and intra-person variations. This paper utilises the spherical SVM classifier to enhance the recognition performance. Finally, the proposed GWTM operator is compared with other existing algorithms such as, GOM, LBP and LGP based on the parameters of accuracy, FAR and FRR. The proposed GWTM operator attains the highest accuracy of 95% and a minimum FAR of 5%. The results prove that the proposed GWTM yields a performance improvement of 5, 3, 4 and 15% over the GOM, LBP, LGP and GWTM, respectively, in the absence of the BAT algorithm.
机译:在生物识别技术中,人脸识别是重要的识别方法之一,具有各种应用程序,例如视频监视,防御,人机交互等。当前的面部识别系统使用高分辨率的正面图像表现良好。相反,利用低分辨率(LR)图像会降低人脸识别系统的性能。因此,本文在部署LR图像时将Gabor滤波器+小波+纹理(GWTM)运算符与BAT算法集成在一起,以提高性能。该算法融合了Gabor特征的唯一性,局部特征和小波特征的鲁棒性,以处理人与人之间的变异。本文利用球形SVM分类器来提高识别性能。最后,基于精度,FAR和FRR参数,将建议的GWTM运算符与其他现有算法(如GOM,LBP和LGP)进行比较。拟议的GWTM运营商可实现95%的最高准确度和5%的最小FAR。结果证明,在没有BAT算法的情况下,所提出的GWTM分别比GOM,LBP,LGP和GWTM分别提高了5%,3%,4%和15%的性能。

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