Recognition of Multi-Pose Head Gestures in Human Conversations

Ligeng Dong, Y. Jin, L. Tao, Guangyou Xu
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引用次数: 5

Abstract

We address the problem of recognizing multi-pose head nodding and shaking gestures in human conversations. Existing methods mainly recognize head gestures in restricted environments like human robot interaction, where face poses are near frontal and head motions are not natural. However, in human conversations, faces of subjects might be in arbitrary poses while head gestures are often subtle. Since the face pose change and head gesture movement are of different scale, we propose to track the face of varied poses with a mixed-state particle filter and detect the subtle head movement by a Kanade-Lucas-Tomasi tracker. The motion patterns in both horizontal and vertical directions are detected and then head gestures are analyzed by a Finite State Machine. Experiments on natural human conversations demonstrated the effectiveness of our method.
人类对话中多姿态头部手势的识别
我们解决了在人类对话中识别多姿态头部点头和摇晃手势的问题。现有的方法主要是在人机交互等受限环境中识别头部手势,在这些环境中,面部姿势接近正面,头部运动不自然。然而,在人类的对话中,受试者的面部可能会摆出任意的姿势,而头部的姿势往往很微妙。由于人脸姿态变化和头姿运动的尺度不同,我们提出用混合状态粒子滤波跟踪不同姿态的人脸,用Kanade-Lucas-Tomasi跟踪器检测细微的头部运动。检测水平方向和垂直方向的运动模式,然后用有限状态机分析头部手势。对人类自然对话的实验证明了我们方法的有效性。
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