Hierarchical recognition of intentional human gestures for sports video annotation

Graeme S. Chambers, S. Venkatesh, G. West, H. Bui
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引用次数: 99

Abstract

We present a novel technique for the recognition of complex human gestures for video annotation using accelerometers and the hidden Markov model. Our extension to the standard hidden Markov model allows us to consider gestures at different levels of abstraction through a hierarchy of hidden states. Accelerometers in the form of wrist bands are attached to humans performing intentional gestures, such as umpires in sports. Video annotation is then performed by populating the video with time stamps indicating significant events, where a particular gesture occurs. The novelty of the technique lies in the development of a probabilistic hierarchical framework for complex gesture recognition and the use of accelerometers to extract gestures and significant events for video annotation.
体育视频注释中有意人类手势的层次识别
我们提出了一种利用加速度计和隐马尔可夫模型来识别视频注释中复杂的人类手势的新技术。我们对标准隐马尔可夫模型的扩展允许我们通过隐藏状态的层次结构在不同的抽象层次上考虑手势。腕带形式的加速计附着在人类有意做出的手势上,比如体育比赛中的裁判。然后,通过在视频中填充时间戳来执行视频注释,这些时间戳表明在特定手势发生的地方发生了重要事件。该技术的新颖之处在于开发了用于复杂手势识别的概率层次框架,并使用加速度计提取手势和视频注释的重要事件。
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