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A Robust Facial Feature Tracking Method Based on Optical Flow and Prior Measurement

机译:基于光流和先验测量的鲁棒面部特征跟踪方法

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摘要

Cognitive informatics (CI) is a research area including some interdisciplinary topics. Visual tracking is not only an important topic in CI, but also a hot topic in computer vision and facial expression recognition. In this paper, a novel and robust facial feature tracking method is proposed, in which Kanade-Lucas-Tomasi (KLT) optical flow is taken as basis. The prior method of measurement consisting of pupils detecting features restriction and errors and is used to improve the predictions. Simulation experiment results show that the proposed method is superior to the traditional optical flow tracking. Furthermore, the pmposed method is used in a real time emotion recognition system and good recognition result is achieved.
机译:认知信息学(CI)是一个包括一些跨学科主题的研究领域。视觉跟踪不仅是CI中的重要主题,而且还是计算机视觉和面部表情识别中的热门话题。本文提出了一种新颖且鲁棒的人脸特征跟踪方法,以Kanade-Lucas-Tomasi(KLT)光流为基础。现有的测量方法包括由瞳孔检测特征限制和误差,并用于改进预测。仿真实验结果表明,该方法优于传统的光流跟踪。此外,该方法被用于实时情绪识别系统中,并取得了良好的识别效果。

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