Recursive identification of gesture inputs using hidden Markov models

J. Schlenzig, E. Hunter, R. Jain
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引用次数: 122

Abstract

Human-machine interfaces play a role of growing importance as computer technology continues to evolve. Motivated by the desire to provide users with an intuitive gesture input system, we describe the design of a recursive filter applied to the vision-based gesture interpretation problem. The gestures are modeled as a hidden Markov model with the state representing the gesture sequences, and the observations being the current static hand pose. At each time step the recursive filter updates its estimate of what gesture is occurring based on the current extracted pose information. The result is a robust system which provides the user with continual feedback during compound gestures.<>
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使用隐马尔可夫模型递归识别手势输入
随着计算机技术的不断发展,人机界面扮演着越来越重要的角色。为了给用户提供一个直观的手势输入系统,我们设计了一种递归滤波器,用于基于视觉的手势解释问题。手势建模为隐马尔可夫模型,状态表示手势序列,观察值为当前静态手部姿势。在每个时间步,递归滤波器根据当前提取的姿态信息更新其对正在发生的手势的估计。结果是一个强大的系统,在复合手势中为用户提供持续的反馈。
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