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Multiple-human tracking using multiple cameras

机译:使用多个摄像机的多人跟踪

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摘要

We propose a human motion detection method using multiple-viewpoint images. In vision-based human tracking, self-occlusions and human-human occlusions are a part of the more significant problems. Employing multiple viewpoints and a viewpoint selection mechanism, however, can reduce these problems. The vision system in this case should select the best viewpoints for extracting human motion information; the "best" selections can be changed among different types of target information. We address the problem of tracking human bodies. We divide the task into three primitive sub-tasks (position detection, rotation angle detection and body side detection). Each sub-task has a different criterion for selecting viewpoints and an estimation result of one sub-task can help another sub-task. We describe the criteria for accomplishing the individual sub-tasks and the relationships between sub-tasks. We have built an experimental system based on a small number of reliable image features and performed fundamental examinations on the viewpoint selection approach.
机译:我们提出了一种使用多视点图像的人体运动检测方法。在基于视觉的人体跟踪,自我闭塞和人类闭合是更重要的问题的一部分。然而,使用多个观点和视点选择机制可以减少这些问题。在这种情况下,视觉系统应选择提取人类运动信息的最佳视点;可以在不同类型的目标信息中改变“最佳”选择。我们解决了跟踪人体的问题。我们将任务划分为三个原始子任务(位置检测,旋转角度检测和身体侧检测)。每个子任务具有不同的标准,用于选择视点,一个子任务的估计结果可以帮助另一个子任务。我们描述了实现各个子任务的标准以及子任务之间的关系。我们已经基于少量可靠的图像特征构建了一个实验系统,并对视点选择方法进行了基本检查。

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