警察监视场景中的对象检测

A. Wilkowski, Włodzimierz Kasprzak, M. Stefanczyk
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引用次数: 3

摘要

警察和各种安全部门在调查犯罪活动时使用视频分析。一个典型的场景是在图像序列中选择对象,并在其他图像中搜索相似的对象。支持这种场景的算法必须协调几个看似矛盾的因素:训练和检测速度、检测可靠性和从稀疏数据中学习。在该系统中,我们提出了一种组合的支持向量机/级联检测器,以提高检测速度和可靠性。此外,采用目标跟踪和背景前景分离算法,结合样本合成,采集丰富的训练数据。实验表明,该系统是有效的、有用的,适合于选定的警务监控任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Object detection in the police surveillance scenario
Police and various security services use video analysis when investigating criminal activity. One typical scenario is the selection of object in image sequence and search for similar objects in other images. Algorithms supporting this scenario must reconcile several seemingly contradicting factors: training and detection speed, detection reliability and learning from sparse data. In the system that we propose a combined SVM/Cascade detector is used for both speed and detection reliability. In addition, object tracking and background-foreground separation algorithm together with sample synthesis is used to collect rich training data. Experiments show that the system is effective, useful and suitable for selected tasks of police surveillance.
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