Object detection and tracking in night time video surveillance

Abdullah Nazib, Chi-Min Oh, Chil-Woo Lee
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引用次数: 8

Abstract

Object tracking is always a challenging research to the computer vision community. It becomes more difficult at night video systems due to low contrast against the background. This paper is proposing a framework that detects object and tracks it at low contrast night surveillance video. A robust intensity statistics based detection method has been designed for processing low contrast frame and detect object structure from it. Based on successful detection, it tracks the object using Kalman filter algorithm.
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夜间视频监控中的目标检测与跟踪
目标跟踪一直是计算机视觉领域的一个具有挑战性的研究课题。在夜间视频系统中,由于背景对比度较低,这变得更加困难。本文提出了一种在低对比度夜间监控视频中检测目标并对其进行跟踪的框架。设计了一种基于强度统计的鲁棒检测方法,用于处理低对比度帧并从中检测目标结构。在检测成功的基础上,利用卡尔曼滤波算法对目标进行跟踪。
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