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An analysis-by-synthesis method based on sparse representation for heterogeneous face biometrics

机译:基于稀疏表示的异构人脸生物特征识别综合分析方法

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In recent years, single-mode face recognition has achieved great progress under the impetus of a variety of applications, and its recognition rate can reach as high as 99%. Heterogeneous face biometrics, namely face mapping between images captured in different spectral bands, has now become a hotspot. Our paper focuses on the problem of face recognition between registered visual (VIS) images and predicted near-infrared (NIR) images, and proposes a new method, based on extant VIS and NIR images sets to synthesize corresponding VIS image by analyzing the imaging model of heterogeneous image pairs, thereby performing the eclectic face mapping. Experiments show that the synthesized images greatly reduce the difference between them, and face recognition based on it shows promising results.
机译:近年来,单模式人脸识别在各种应用的推动下取得了长足的进步,其识别率高达99%。异构的面部生物特征,即在不同光谱带中捕获的图像之间的面部映射,现在已成为热点。本文针对配准视觉(VIS)图像和预测近红外(NIR)图像之间的人脸识别问题,提出了一种基于现有VIS和NIR图像集通过分析成像模型来合成相应VIS图像的新方法。异质图像对的映射,从而执行折衷的面部映射。实验表明,所合成的图像大大减少了它们之间的差异,并在此基础上的人脸识别取得了可喜的成果。

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