首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >ATUOMATIC DETECTION AND TRACKING OF HUMAN HEADS USING AN ACTIVE STEREO VISION SYSTEM
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ATUOMATIC DETECTION AND TRACKING OF HUMAN HEADS USING AN ACTIVE STEREO VISION SYSTEM

机译:主动立体视觉系统自动检测和跟踪人的头部

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摘要

A new head tracking algorithm for automatically detecting and tracking human heads in complex backgrounds is proposed. By using an elliptical model for the human head, our Maximum Likelihood (ML) head detector can reliably locate human heads in images having complex backgrounds and is relatively insensitive to illumination and rotation of the human heads. Our head detector consists of two channels: the horizontal and the vertical channels. Each channel is implemented by multiscale template matching. Using a hierarchical structure in implementing our head detector, the execution time for detecting the human heads in a 512 x 512 image is about 0.02 second in a Sparc 20 workstation (not including the time for image acquistion). Based on the ellipse-based ML head detector, we have developed a head tracking method that can monitor the entrance of a person, detect and track the person's head, and then control the stereo cameras to focus their gaze on this person's head. In this method, the ML head detector and the mutually-supported constraint are used to extract the corresponding ellipses in a stereo image pair. To implement a practical and reliable face detection and tracking system, further verification using facial features, such as eyes, mouth and nostrils, may be essential. The 3D position computed from the centers of the two corresponding ellipses is then used for fixation. An active stereo head has been used to perform the experiments and has demonstrated that the proposed approach is feasible and promising for practical uses.
机译:提出了一种在复杂背景下自动检测和跟踪人的头部的新算法。通过将椭圆模型用于人的头部,我们的最大似然(ML)头部检测器可以在背景复杂的图像中可靠地定位人的头部,并且对人的头部的照明和旋转相对不敏感。我们的头部检测器包括两个通道:水平和垂直通道。每个通道均通过多尺度模板匹配实现。在我们的头部检测器中使用分层结构,在Sparc 20工作站中检测512 x 512图像中的人的头部的执行时间约为0.02秒(不包括图像获取时间)。基于基于椭圆的ML头部检测器,我们开发了一种头部跟踪方法,该方法可以监视人的进入,检测并跟踪人的头部,然后控制立体声相机将视线聚焦在该人的头上。在这种方法中,ML头部检测器和相互支持的约束条件用于提取立体图像对中的相应椭圆。为了实施实用且可靠的面部检测和跟踪系统,使用面部特征(例如眼睛,嘴巴和鼻孔)进行进一步验证可能至关重要。然后,将从两个相应椭圆的中心计算出的3D位置用于固定。有源立体声头已用于进行实验,并证明了所提出的方法是可行的,并有望用于实际应用。

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