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Robust Face Recognition Strategies Using Feed-Forward Architectures and Parts

机译:使用前馈架构和零件的鲁棒人脸识别策略

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摘要

This paper describes new feed-forward architectural and configural/holistic strategies for robust face recognition. This includes adaptive and robust correlation filters that lock on both appearance and location, and recognition-by-parts using boosting over strangeness driven weak learners. The utility of the proposed architectural strategies, shown with respect to different databases, includes occlusion, disguise, and temporal changes. The results obtained confirm and complement key findings on the ways people recognize each other, among them that the facial features are processed holistically and that the eyebrows are among the most important features for recognition.
机译:本文介绍了用于稳健人脸识别的新前馈体系结构和配置/整体策略。这包括可锁定外观和位置的自适应且鲁棒的相关性过滤器,以及通过增强陌生驱动的弱学习者的部分识别功能。针对不同的数据库显示,所提出的体系结构策略的效用包括遮挡,伪装和时间变化。所获得的结果证实并补充了人们彼此识别方式的关键发现,其中包括对面部特征进行整体处理以及眉毛是最重要的识别特征之一。

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