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Image-quality-based fusion approach for face recognition

机译:基于图像质量的人脸识别融合方法

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Discrimination, robustness and inexpensiveness in both terms of time and storage are the three most important properties of a good face recognition system. A recent feature descriptor called Patterns of Oriented Edge Magnitude (POEM) balances three concerns. However, this feature descriptor does not take account different lighting conditions on different regions of the given face and simply concatenates different regions on the given face to get the histogram sequence to represent the face, which will reduce the recognition accuracy. Motivated by these analyses, this paper presents a face recognition system by combining the robust illumination normalization, the efficient POEM feature descriptor and the multiple region feature fusion approach. This paper makes two main contributions: 1) it presents a simple and efficient preprocessing method to reduce the effect of varying illumination; 2) it proposes a novel image-quality-based fusion approach by incorporating the histogram sequence estimated from different regions on the given face. The experiment results on the Extend Yale Face Database B show that the proposed face recognition system using image-quality-based fusion approach has better performance than simply concatenating histogram sequence estimated from different regions.
机译:两种时间和储存中的歧视,鲁棒性和廉价且廉价是一个良好的面部识别系统的三个最重要的属性。最近的一个特征描述符称为面向边缘幅度的模式(诗)余额三个问题。然而,该特征描述符在给定面部的不同区域上没有考虑不同的照明条件,并且简单地连接给定面上的不同区域以使直方图序列表示面部,这将降低识别精度。通过这些分析的激励,本文通过组合鲁棒照明归一化,高效诗特征描述符和多区域特征融合方法来呈现面部识别系统。本文提出了两个主要贡献:1)它提出了一种简单有效的预处理方法,以降低不同照明的效果; 2)通过结合给定面上的不同区域估计的直方图序列,提出了一种新的基于图像质量的融合方法。延伸耶鲁面部数据库B上的实验结果表明,所提出的面部识别系统使用基于图像质量的融合方法具有更好的性能,而不是简单地连接来自不同区域估计的直方图序列。

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