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Local Color Vector Binary Patterns From Multichannel Face Images for Face Recognition

机译:来自多通道人脸图像的局部颜色矢量二进制模式用于人脸识别

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This paper proposes a novel face descriptor based on color information, i.e., so-called local color vector binary patterns (LCVBPs), for face recognition (FR). The proposed LCVBP consists of two discriminative patterns: color norm patterns and color angular patterns. In particular, we have designed a method for extracting color angular patterns, which enables to encode the discriminating texture patterns derived from spatial interactions among different spectral-band images. In order to perform FR tasks, the proposed LCVBP feature is generated by combining multiple features extracted from both color norm patterns and color angular patterns. Extensive and comparative experiments have been conducted to evaluate the proposed LCVBP feature on five public databases. Experimental results show that the proposed LCVBP feature is able to yield excellent FR performance for challenging face images. In addition, the effectiveness of the proposed LCVBP feature has successfully been tested by comparing other state-of-the-art face descriptors.
机译:本文提出了一种基于颜色信息的新型人脸描述符,即所谓的局部颜色矢量二进制模式(LCVBP),用于人脸识别(FR)。提议的LCVBP由两个判别模式组成:颜色规范模式和颜色角度模式。特别地,我们设计了一种提取色角图案的方法,该方法能够对从不同光谱带图像之间的空间相互作用得出的区分纹理图案进行编码。为了执行FR任务,通过组合从颜色规范模式和颜色角度模式中提取的多个特征来生成建议的LCVBP特征。已经进行了广泛和比较的实验,以在五个公共数据库上评估建议的LCVBP功能。实验结果表明,所提出的LCVBP功能能够为具有挑战性的人脸图像提供出色的FR性能。此外,通过比较其他最新的面部描述符,已成功测试了所提出的LCVBP功能的有效性。

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