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Prediction-Based Gesture Detection in Lecture Videos by Combining Visual, Speech and Electronic Slides

机译:视觉,语音和电子幻灯片相结合的演讲视频中基于预测的手势检测

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This paper presents an efficient algorithm for gesture detection in lecture videos by combining visual, speech and electronic slides. Besides accuracy, response time is also considered to cope with the efficiency requirements of real-time applications. Candidate gestures are first detected by visual cue. Then we modify HMM models for complete gestures to predict and recognize incomplete gestures before the whole gestures paths are observed. Gesture recognition is used to verify the results of gesture detection. The relations between visual, speech and slides are analyzed. The correspondence between speech and gesture is employed to improve the accuracy and the responsiveness of gesture detection
机译:本文通过结合视觉,语音和电子幻灯片,提出了一种用于演讲视频中手势检测的有效算法。除了准确性,响应时间还被认为可以满足实时应用的效率要求。首先通过视觉提示检测候选手势。然后,我们针对完整的手势修改HMM模型,以在观察整个手势路径之前预测和识别不完整的手势。手势识别用于验证手势检测的结果。分析了视觉,语音和幻灯片之间的关系。语音和手势之间的对应关系可提高手势检测的准确性和响应性

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