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Optical Flow-based Facial Feature Tracking Using Prior Measurement

机译:基于光学流的面部特征跟踪使用先前测量

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Cognitive informatics (CI) is a research area including some interdisciplinary topics. Visual tracking is an important research topic in computer vision and face expression recognition, in which domain-oriented facial features tracking is a very hot spot. In this paper, a robust facial feature tracking method is proposed. It takes Lucas-Kanade-Tomasi (KLT) optical flow as basis, and corrects the predictions by prior measurement which consists of pupils detecting, feature restricting and errors accumulating. Simulation experiment results show that the proposed method has better performance than the traditional optical flow tracking.
机译:认知信息学(CI)是一个研究区域,包括一些跨学科主题。视觉跟踪是计算机视觉和面部表情识别中的重要研究主题,其中面向域的面部特征跟踪是一个非常热点。本文提出了一种强大的面部特征跟踪方法。它需要Lucas-Kanade-Tomasi(KLT)光流量,并且通过先前测量来校正预测,该测量由瞳孔检测,特征限制和累积错误。仿真实验结果表明,该方法具有比传统光学流动跟踪更好的性能。

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