首页> 外文会议>European Conference on Computer Vision(ECCV 2006) pt.2; 20060507-13; Graz(AT) >Tracking Objects Across Cameras by Incrementally Learning Inter-camera Colour Calibration and Patterns of Activity
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Tracking Objects Across Cameras by Incrementally Learning Inter-camera Colour Calibration and Patterns of Activity

机译:通过逐步学习摄像机之间的色彩校准和活动模式来跟踪摄像机之间的对象

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摘要

This paper presents a scalable solution to the problem of tracking objects across spatially separated, uncalibrated, non-overlapping cameras. Unlike other approaches this technique uses an incremental learning method, to model both the colour variations and posterior probability distributions of spatio-temporal links between cameras. These operate in parallel and are then used with an appearance model of the object to track across spatially separated cameras. The approach requires no pre-calibration or batch preprocessing, is completely unsupervised, and becomes more accurate over time as evidence is accumulated.
机译:本文提出了一种可扩展的解决方案,可以解决在空间上分开的,未经校准的,不重叠的摄像机之间跟踪对象的问题。与其他方法不同,该技术使用增量学习方法来对相机之间的时空链接的颜色变化和后验概率分布进行建模。它们并行运行,然后与对象的外观模型一起使用,以在空间上分开的摄像机之间进行跟踪。该方法不需要预先校准或批量预处理,完全不受监督,并且随着时间的推移,随着证据的积累,它变得更加准确。

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