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Face Recognition under Varying Lighting Based on the Probabilistic Model of Gabor Phase

机译:基于Gabor相位概率模型的变光照下人脸识别

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This paper present a novel method for robust illumination-tolerant face recognition based on the Gabor phase and a probabilistic similarity measure. Invited by the work in Eigenphases [1] by using the phase spectrum of face images, we use the phase information of the multi-resolution and multi-orientation Gabor filters. We show that the Gabor phase has more discriminative information and it is tolerate to illumination variations. Then we use a probabilistic similarity measure based on a Bayesian (MAP) analysis of the difference between the Gabor phases of two face images. We train the model using some images in the illumination subset of CMU-PIE database and test on the other images of CMU-PIE database and the Yale B database and get comparative results.
机译:本文提出了一种基于Gabor阶段的鲁棒照明耐受面部识别的新方法及概率相似度测量。通过使用面部图像的阶段频谱的特征异常[1]邀请,我们使用多分辨率和多向Gabor滤波器的相位信息。我们表明Gabor阶段具有更大的歧视信息,并且耐受变化。然后,我们使用基于贝叶斯(地图)分析的概率相似度测量对两个面部图像的Gabor阶段之间的差异进行分析。我们在CMU-PIE数据库的照明子集中使用一些图像培训模型,并在CMU-PIE数据库和Yale B数据库的其他图像上进行测试,得到比较结果。

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