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'Localization and classification of partially overlapped objects using self-organizing trees'

机译:“使用自组织树对部分重叠的对象进行定位和分类”

摘要

This paper exploits an innovative technique to improve performances related to localization, tracking and classification of objects in a video surveillance system. The developed strategy has been applied to the problem of interaction between objects, i.e. well tuned traditional algorithms are able to track and classify objects whenever they enter the scene well-isolated from the other moving objects, but the state-of-the-art techniques fail when an occlusion situation is verified from the beginning. The performances of the developed algorithms have been evaluated on sequences of real images and experimental results have shown the validity of the approach.
机译:本文利用一种创新技术来提高与视频监视系统中的对象的定位,跟踪和分类有关的性能。所开发的策略已应用于对象之间的交互问题,即,经过良好调整的传统算法能够在对象进入与其他移动对象完全隔离的场景时对其进行跟踪和分类,但是采用了最新技术如果从一开始就验证了遮挡情况,则失败。在真实图像序列上评估了所开发算法的性能,实验结果证明了该方法的有效性。

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