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Object retrieval using scene normalized human model for video surveillance system

机译:基于场景标准化人体模型的视频监控系统对象检索

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This paper presents a human model-based feature extraction method for a video surveillance retrieval system. The proposed method extracts, from a normalized scene, object features such as height, speed, and representative color using a simple human model based on multiple-ellipse. Experimental results show that the proposed system can effectively track moving routes of people such as a missing child, an absconder, and a suspect after events.
机译:本文提出了一种基于人体模型的视频监控检索系统特征提取方法。所提出的方法使用基于多椭圆的简单人体模型从标准化场景中提取对象特征,例如高度,速度和代表色。实验结果表明,该系统可以有效地跟踪失踪儿童,潜逃者和事后嫌疑人等人的活动路线。

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