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Optimal fusion aided face recognition from visible and thermal face images

机译:可见光和热面图像的最佳融合辅助面部识别

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This paper proposes a novel Eigen face recognition that is aided by fusion of visible and thermal face images to improve the face recognition accuracy. We adopt three different fusion schemes where in the face information is fused by the optimal weights obtained by different optimization algorithms. The first two fusion approaches operate in the dual tree discrete wavelet transform (DT-DWT), while the third one operates in the Curvelet transform (CT) domain. We employ particle swarm optimization (PSO), self-tuning particle swarm optimization (STPSO) and brain storm optimization algorithm (BSO) to find optimal fusion coefficients. The proposed fusion aided face recognition approaches are evaluated through extensive experiments using OCTVBS benchmark face database and the Eigen face detection methodology. Simulation results show that proposed face recognition techniques have significant performance improvement in recognition accuracy suggesting fusion aided face recognition approach that deserves further study and consideration whenever high recognition accuracy is desired.
机译:本文提出了一种新的特征面识别,其通过融合可见光和热面图像来提高面部识别精度。我们采用三种不同的融合方案,其中在面部信息中由不同优化算法获得的最佳权重融合。前两个融合方法在双树离散小波变换(DT-DWT)中操作,而第三个则在Curvelet变换(CT)域中操作。我们采用粒子群优化(PSO),自调整粒子群优化(STPSO)和脑风暴优化算法(BSO)以找到最佳融合系数。所提出的融合辅助面部识别方法通过使用OctVBS基准面部数据库和特征面检测方法进行广泛的实验来评估。仿真结果表明,拟议的面部识别技术具有显着的性能提高,识别准确性提高融合辅助面部识别方法,尽可能需要进一步研究和考虑。

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