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Robust face tracking by integration of two separate trackers: Skin color and facial shape

机译:通过集成两个单独的跟踪器进行稳健的面部跟踪:肤色和面部形状

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摘要

This paper proposes a robust face tracking method based on the condensation algorithm that uses skin color and facial shape as observation measures. Two trackers are used for robust tracking: one tracks the skin color regions and the other tracks the facial shape regions. The two trackers are coupled using an importance sampling technique, where the skin color density obtained from the skin color tracker is used as the importance function to generate samples for the shape tracker. The samples of the skin color tracker within the chosen shape region are updated with higher weights. Also, an adaptive color model is used to avoid the effect of illumination change in the skin color tracker. The proposed face tracker performs more robustly than either the skin-color-based tracker or the facial shape-based tracker, given the presence of background clutter and/or illumination changes. (c) 2007 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种基于凝结算法的鲁棒人脸跟踪方法,该方法以肤色和面部形状为观察指标。有两种跟踪器用于鲁棒跟踪:一种跟踪皮肤颜色区域,另一种跟踪面部形状区域。使用重要性采样技术将两个跟踪器耦合在一起,其中将从肤色跟踪器获得的肤色密度用作重要性函数,以生成形状跟踪器的样本。所选形状区域内的皮肤颜色跟踪器的样本将使用更高的权重进行更新。而且,自适应颜色模型用于避免肤色跟踪器中照明变化的影响。考虑到背景杂波和/或照明的变化,建议的面部跟踪器的性能比基于肤色的跟踪器或基于面部形状的跟踪器都要强。 (c)2007模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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