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Evaluation of Multi-frame Fusion Based Face Classification Under Shadow

机译:阴影下基于多帧融合的人脸分类评估

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A video sequence of a head moving across a large pose angle contains much richer information than a single-view image, and hence has greater potential for identification purposes. This paper explores and evaluates the use of a multi-frame fusion method to improve face recognition in the presence of strong shadow. The dataset includes videos of 257 subjects who rotated their heads by 0° to 90°. Experiments were carried out using ten video frames per subject that were fused on the score level. The primary findings are: (i) A significant performance increase was observed, with the recognition rate being doubled from 40% using a single frame to 80% using ten frames; (ii) The performance of multi-frame fusion is strongly related to its inter-frame variation that measures its information diversity.
机译:头部的视频序列在较大的摆角上移动时,包含的信息比单视图图像要丰富得多,因此具有更大的识别潜力。本文探讨并评估了使用多帧融合方法来改善在强阴影存在下的人脸识别能力。数据集包含257个主题的视频,这些主题的头部旋转了0°至90°。使用每个受试者十个视频帧进行实验,这些视频帧在得分级别上融合在一起。主要发现是:(i)观察到了显着的性能提升,识别率从单帧的40%增加到十帧的80%,翻了一番; (ii)多帧融合的性能与其衡量信息多样性的帧间变化密切相关。

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