Example-Based Color Vehicle Retrieval for Surveillance

L. Brown
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引用次数: 22

Abstract

In this paper, we evaluate several low dimensionalcolor features for object retrieval in surveillance video.Previous work in object retrieval in surveillance has beenhampered by issues in low resolution, poor segmentation,pose and lighting variations and the cost of retrieval. Toovercome these difficulties, we restrict our analysis toalarm-based vehicle detection and as a consequence, werestrict both pose and lighting variations. In addition, westudy the utility of example-based retrieval to avoid thelimitations of strict color classification. Finally, since weperform our evaluation at run-time for alarm-baseddetection, we do not need to index into a large database.We evaluate the efficiency and effectiveness of severalcolor features including standard color histograms,weighted color histograms, variable bin size colorhistograms and color correlograms. Results show colorcorrelogram to have the best performance for ourdatasets.
基于实例的彩色车辆监控检索
在本文中,我们评估了几种用于监控视频中目标检索的低维颜色特征。以往的监控目标检索工作受到低分辨率、差分割、姿态和光照变化以及检索成本等问题的阻碍。为了克服这些困难,我们将分析限制在基于警报的车辆检测上,因此,我们严格控制了姿势和照明变化。此外,我们还研究了基于示例的检索的实用性,以避免严格的颜色分类的局限性。最后,由于我们在运行时对基于警报的检测执行评估,因此我们不需要索引到大型数据库中。我们评估了几种颜色特征的效率和有效性,包括标准颜色直方图、加权颜色直方图、可变箱大小颜色直方图和颜色相关图。结果表明,颜色相关图对我们的数据集具有最好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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