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A fast eye localization method for face recognition

机译:一种用于人脸识别的快速眼睛定位方法

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摘要

We introduce a fast, robust, accurate eye localization algorithm. Detecting and normalizing human faces from live video streams is the first crucial step in a face verification/recognition system. The accuracy and robustness affect the performance of the following face registration and classification. To localize face regions properly, we detect eye corners by using a corner detector and Gabor wavelets. First, by applying a corner detector in skin color regions, we dramatically reduce the candidate regions for eye corners. Extracted features are represented in a semilocal manner to increase discrimination. Then, in the set of the reduced candidates, a robust feature decision algorithm based on Gabor response analysis gives accurate eye corner locations. Experimental results on real images are presented.
机译:我们介绍了一种快速,坚固,精确的眼部定位算法。 从实况视频流检测和归一化人面是面部验证/识别系统中的第一重要步骤。 准确性和鲁棒性影响以下脸部注册和分类的性能。 通过使用拐角探测器和Gabor小波定位面部区域来定位面部区域。 首先,通过在肤色区域应用角探测器,我们显着减少了眼角的候选地区。 提取的特征以半同体方式表示以增加鉴别。 然后,在减少候选者的集合中,基于Gabor响应分析的鲁棒特征决策算法提供了精确的眼角位置。 提出了真实图像的实验结果。

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