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Dealing with occlusions in face recognition by region-based fusion

机译:通过基于地区融合的人脸识别处理闭塞

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The last research efforts made in the face recognition community have been focusing in improving the robustness of systems under different variability conditions like change of pose, expression, illumination, low resolution and occlusions. Occlusions are also a manner of evading identification, which is commonly used when committing crimes or thefts. In this work we propose an approach based on the fusion of non occluded facial regions that is robust to occlusions in a simple and effective manner. We evaluate the region-based approach in three face recognition systems: Face++ (a commercial software based on CNN) and two advancements over LBP systems, one considering multiple scales and other considering a larger number of facial regions. We report experiments based on the ARFace database and prove the robustness of using only non-occluded facial regions, the effectiveness of a large number of regions and the limitations of the commercial system when dealing with occlusions.
机译:在面部识别社区中的最后一项研究努力一直专注于改善不同变化条件下系统的稳健性,如姿势,表达,照明,低分辨率和闭塞等变化。闭塞也是一种逃避识别的方式,这在犯罪或盗窃时通常使用。在这项工作中,我们提出了一种基于非遮挡面部区域的融合的方法,以简单有效的方式鲁造。我们在三个面部识别系统中评估基于地区的方法:面部++(基于CNN的商业软件)和LBP系统的两个进步,考虑多个尺度和其他考虑更多的面部区域。我们报告基于ARFACE数据库的实验,并证明仅使用非闭塞面部区域的稳健性,在处理闭塞时,只有大量地区的有效性以及商业系统的局限性。

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