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A Robust Eye Detection Method in Facial Region

机译:面部区域的稳健眼部检测方法

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摘要

We describe a novel eye detection method that is robust to the obstacles such as surrounding illumination, hair, and eye glasses. The obstacles above a face image are constraints to detect eye position. These constraints affect the performance of the face applications such as face recognition, gaze tracking, and video indexing systems. To overcome this problem, the proposed method for eye detection consists of three steps. First, the self quotient images are applied to the face images by rectifying illumination. Then, unnecessary pixels for eye detection are removed by using the symmetry object filter. Next, the eye candidates are extracted by using the gradient descent which is a simple and a fast computing method. Finally, the classifier, which has trained by using AdaBoost algorithm, selects the eyes from all of the eye candidates. The usefulness of the proposed method has been demonstrated in an embedded system with the eye detection performance.
机译:我们描述了一种新颖的眼睛检测方法,该方法对于诸如周围照明,头发和眼镜之类的障碍物具有鲁棒性。面部图像上方的障碍物是检测眼睛位置的约束条件。这些限制会影响面部应用程序的性能,例如面部识别,凝视跟踪和视频索引系统。为了克服这个问题,所提出的用于眼睛检测的方法包括三个步骤。首先,通过校正照明将自商图像应用于面部图像。然后,通过使用对称对象过滤器去除用于眼睛检测的不必要像素。接下来,通过使用梯度下降来提取眼睛候选者,梯度下降是一种简单且快速的计算方法。最后,已经使用AdaBoost算法训练的分类器从所有候选眼睛中选择了一只眼睛。在具有眼睛检测性能的嵌入式系统中已经证明了该方法的有效性。

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