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Study of Local Matching-Based Facial Recognition Methods Using Thermal Infrared Imagery

机译:基于局部匹配的热红外图像人脸识别方法研究

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This paper shows a comparative study among different local matching-based methods for thermal infrared face recognition. The principal assumption of this work is that the thermal face corresponds to the diffuse energy emission captured by an infrared camera, where the thermal signature is unique for each subject and it can be addressed as a texture descriptor with thermal images. Local matching-based methods find inter-class differences that improve the face recognition rate in thermal spectrum. Specifically, this work considers four methods: Local Binary Pattern (LBP), Local Derivative Pattern (LDP), Weber Linear Descriptor (WLD) and Histograms of Oriented Gradients Descriptors (HOG). The methods are evaluated and compared using the UCHThermalFace database, that considers real-world conditions and unconstrained environments, such as indoor and outdoor setups, natural variations in illumination, facial expression, pose, accessories, occlusions, and background. Results indicate that HOG variants followed by LBP method achieved the best recognition rates for face recognition systems.
机译:本文显示了不同的基于局部匹配的热红外人脸识别方法之间的比较研究。这项工作的主要假设是,热面对应于红外热像仪捕获的散射能量发射,其中热签名对于每个对象都是唯一的,并且可以将其作为带有热图像的纹理描述符来解决。基于局部匹配的方法发现类间差异,可提高热光谱中的面部识别率。具体来说,这项工作考虑了四种方法:局部二进制模式(LBP),局部导数模式(LDP),韦伯线性描述符(WLD)和定向梯度描述符直方图(HOG)。使用UCHThermalFace数据库评估并比较了这些方法,该数据库考虑了实际条件和不受限制的环境,例如室内和室外设置,光照的自然变化,面部表情,姿势,配件,遮挡物和背景。结果表明,HOG变体和LBP方法相继获得了面部识别系统的最佳识别率。

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