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Approximation algorithm based on greedy approach for face recognition with partial occlusion

机译:基于贪婪方法的局部遮挡人脸识别算法

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The problem of partial occlusion in face recognition has received less attention over the last few years. Partial occlusion is an important challenge of the face recognition, in which certain parts of a face are hidden by the objects such as sunglasses, hats, scarves, and a mask that can cause significant degradation in the performance of the recognition system. This paper specifically addresses face recognition with partial occlusion. The proposed algorithm is an approximate version of conventional dynamic time warping (DTW), which is an exact algorithm and based on dynamic programming. An exact algorithm provides an exact result and involves huge computation efforts when there is a gallery with more images. Hence, a faster approximation algorithm based on greedy approach is proposed to solve the partially occluded face recognition problem by finding a near optimal solution with a guarantee on its performance. Many image processing applications are real-time and need a near-optimal solution. The proposed work has two contributions, the first one is in designing a string generation algorithm for converting a face into a sequence of strings and the second is designing an approximation algorithm based on greedy approach for matching strings. The proposed work uses standard face databases such as FEI, IAB, ORL, and Extended Yale-B for evaluating the effectiveness of the system.
机译:在最近几年中,面部识别中的部分遮挡问题受到了越来越少的关注。部分遮挡是面部识别的一项重要挑战,其中面部的某些部分被诸如太阳镜,帽子,围巾和面罩之类的物体遮盖,这可能会导致识别系统的性能显着下降。本文专门针对部分遮挡的人脸识别。所提出的算法是常规动态时间规整(DTW)的近似版本,它是一种精确算法并且基于动态规划。当画廊中有更多图像时,精确算法可提供精确结果并涉及大量计算工作。因此,提出了一种基于贪婪方法的快速近似算法,通过寻找具有最优性能的近似最优解来解决部分遮挡的人脸识别问题。许多图像处理应用程序都是实时的,需要接近最佳的解决方案。拟议的工作有两个贡献,第一个是设计用于将面部转换为字符串序列的字符串生成算法,第二个是设计基于贪婪方法的近似算法以匹配字符串。拟议的工作使用标准的人脸数据库(例如FEI,IAB,ORL和Extended Yale-B)来评估系统的有效性。

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