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A Framework for Hand Gesture Recognition and Spotting Using Sub-gesture Modeling

机译:使用子手势建模的手势识别和识别框架

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Hand gesture interpretation is an open research problem in Human Computer Interaction (HCI), which involves locating gesture boundaries (Gesture Spotting) in a continuous video sequence and recognizing the gesture. Existing techniques model each gesture as a temporal sequence of visual features extracted from individual frames which is not efficient due to the large variability of frames at different timestamps. In this paper, we propose a new sub-gesture modeling approach which represents each gesture as a sequence of fixed sub-gestures (a group of consecutive frames with locally coherent context) and provides a robust modeling of the visual features. We further extend this approach to the task of gesture spotting where the gesture boundaries are identified using a filler model and gesture completion model. Experimental results show that the proposed method outperforms state-of-the-art Hidden Conditional Random Fields (HCRF) based methods and baseline gesture spotting techniques.
机译:手势解释是人机交互(HCI)中的开放研究问题,涉及在连续视频序列中定位手势边界(手势斑点)并识别手势。现有技术模拟每个手势作为从各个帧提取的视觉特征的时间序列,由于不同时间戳的帧的大变异性而没有高效。在本文中,我们提出了一种新的子手势建模方法,其表示每个手势作为固定子手势序列(具有局部相干上下文的一组连续帧),并提供了可视特征的鲁棒建模。我们进一步将这种方法扩展到使用填充模型和手势完成模型识别姿态边界的手势发现的任务。实验结果表明,所提出的方法优于最先进的隐式条件随机字段(HCRF)的方法和基线手势点发现技术。

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