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首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >MULTIPLE HUMAN DETECTION AND TRACKING BASED ON WEIGHTED TEMPORAL TEXTURE FEATURES
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MULTIPLE HUMAN DETECTION AND TRACKING BASED ON WEIGHTED TEMPORAL TEXTURE FEATURES

机译:基于加权时间纹理特征的多人检测与跟踪

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摘要

In this paper, we present a method of tracking and identifying persons in video images taken by a fixed camera situated at an entrance. In video sequences a person may be totally or partially occluded in a scene for some period of time. The proposed approach uses the appearance model for the identification of persons and the weighted temporal texture features. The weight is related to the size, duration as well as the number of persons adjacent to the target person. Most systems have built an appearance model for each person to solve occlusion problems. The appearance model contains certain information on the target person. We have compared the proposed method with other related methods using color and shape features, and analyzed the features' stability Experimental results with various real video data sequences revealed that real time person tracking and recognition is possible with increased stability in video surveillance applications even under situations of occasional occlusion.
机译:在本文中,我们提出了一种跟踪和识别位于入口处的固定摄像机拍摄的视频图像中人物的方法。在视频序列中,某个时间段内某个人可能会完全或部分被遮挡。所提出的方法使用外观模型来识别人员和加权的时间纹理特征。体重与目标人群的大小,持续时间以及人数有关。大多数系统都为每个人建立了外观模型来解决遮挡问题。外观模型包含有关目标人物的某些信息。我们将提出的方法与使用颜色和形状特征的其他相关方法进行了比较,并分析了特征的稳定性通过各种实时视频数据序列的实验结果表明,即使在某些情况下,实时人员跟踪和识别也可以在视频监控应用中提高稳定性偶尔的咬合。

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