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ADAPTIVE APPEARANCE BASED FACE RECOGNITION

机译:基于自适应外观的人脸识别

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摘要

In this paper, we present an adaptive appearance based face recognition framework that combines the efficiency of global approaches and the robustness of local approaches together. The framework uses a novel eye locator to select an appropriate scheme for appearance based recognition. The eye locator first locates eye candidates via a new strength assignment, determined by the dissimilarity between the local appearance of an image point and the appearance of its neighboring points. Then the eye locator applies a simple but flexible model (half-circle snake) to the local context of the eye candidates in order to either refine the location of an eye candidate or discard non-eye candidates. We show the performance of our framework by testing on challenging face datasets containing extreme expressions, severe occlusions, and varied lighting conditions.
机译:在本文中,我们提出了一个基于自适应外观的人脸识别框架,该框架将全局方法的效率和局部方法的鲁棒性结合在一起。该框架使用一种新颖的眼睛定位器为基于外观的识别选择合适的方案。眼睛定位器首先通过新的强度分配来定位眼睛候选者,该强度分配由图像点的局部外观与其相邻点的外观之间的差异确定。然后,眼睛定位器将简单但灵活的模型(半圆蛇)应用于眼睛候选对象的局部上下文,以完善眼睛候选对象的位置或丢弃非眼睛候选对象。通过在包含极端表情,严重遮挡和变化光照条件的具有挑战性的面部数据集上进行测试,我们展示了框架的性能。

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