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Facial feature localization using MOSSE correlation filters

机译:使用MOSSE相关滤波器进行面部特征定位

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Accurately measuring the location of facial features is an important step in many face recognition algorithms. Every face is unique which means localization needs to be tolerant of differences between individual subjects. Additionally, changing illumination, poor focus, and deformation due to expression changes complicate the problem. This paper introduces a method for locating facial features that uses Minimum Output Sum of Squared Error (MOSSE) correlation filters to model object appearance and is combined with a Robust Active Shape Model (ASM) to model facial geometry. It is demonstrated that MOSSE correlation filters outperform Stasm (an open source ASM implementation), Gabor Jets and in some cases even matches human performance.
机译:准确测量面部特征的位置是许多面部识别算法中的重要一步。每个面孔都是唯一的,这意味着本地化需要容忍各个主体之间的差异。另外,变化的照明,不良的聚焦以及由于表情变化引起的变形使问题复杂化。本文介绍了一种用于定位面部特征的方法,该方法使用最小输出平方误差和(MOSSE)相关滤波器对对象外观进行建模,并与鲁棒有效形状模型(ASM)结合以对面部几何进行建模。事实证明,MOSSE相关过滤器的性能优于Stasm(一种开源的ASM实现),Gabor Jets,在某些情况下甚至可以媲美人类的性能。

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