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Face recognition based on error detection under partial occlusion

机译:面部识别基于局部闭锁下的错误检测

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Face recognition presents the difficulty of occlusion. The occlusion is generally endowed a little weight to weaken its influence on recognition performance. On the basis of this idea, many existing algorithms used the reconstruction error or projection error as the probability estimation for occlusion image. These methods require iterative computation, which may lead to the difficulty of threshold selection and high time complexity. To solve these problems, this paper proposed a novel method for occlusion face recognition by using an error detection method. First, a face image is divided into four regions and we extract feature and detect error for each region. Second, we use the logarithmic transform error operator to calculate the weight value of each region. The experiments based on the AR database demonstrate that the proposed algorithm for occlusion face recognition achieves high efficiency and good robustness and outperforms the existing methods for certain occlusion recognition.
机译:面部识别呈现闭塞的难度。闭塞通常赋予少量重量以削弱其对识别性能的影响。在此思想的基础上,许多现有算法使用重建误差或投影误差作为遮挡图像的概率估计。这些方法需要迭代计算,这可能导致阈值选择的难度和高时间复杂度。为了解决这些问题,本文提出了一种利用误差检测方法来遮挡面部识别的新方法。首先,将面部图像分为四个区域,我们提取特征并检测每个区域的错误。其次,我们使用对数转换错误运算符来计算每个区域的权重值。基于AR数据库的实验表明,所提出的遮挡面识别算法实现了高效率和良好的鲁棒性,并且优于某些闭塞识别的现有方法。

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