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A Multicue Bayesian State Estimator for Gaze Prediction in Open Signed Video

机译:用于开放签名视频中注视预测的多线索贝叶斯状态估计器

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摘要

We propose a multicue gaze prediction framework for open signed video content, the benefits of which include coding gains without loss of perceived quality. We investigate which cues are relevant for gaze prediction and find that shot changes, facial orientation of the signer and face locations are the most useful. We then design a face orientation tracker based upon grid-based likelihood ratio trackers, using profile and frontal face detections. These cues are combined using a grid-based Bayesian state estimation algorithm to form a probability surface for each frame. We find that this gaze predictor outperforms a static gaze prediction and one based on face locations within the frame.
机译:我们提出了一种用于开放签名视频内容的多线索注视预测框架,该框架的好处包括在不损失感知质量的情况下获得编码收益。我们调查了哪些线索与注视预测相关,并发现镜头变化,签名者的面部方向和面部位置最有用。然后,我们使用轮廓和正面人脸检测功能,基于基于网格的似然比跟踪器来设计人脸定向跟踪器。这些线索使用基于网格的贝叶斯状态估计算法进行组合,以形成每个帧的概率面。我们发现,这种注视预测器的性能优于静态注视预测器,并且优于基于帧内面部位置的注视器。

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