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基于视频的运动目标检测算法的比较与分析
引用本文:王强,赵书斌. 基于视频的运动目标检测算法的比较与分析[J]. 指挥控制与仿真, 2012, 34(6): 36-40,83
作者姓名:王强  赵书斌
作者单位:江苏自动化研究所,江苏 连云港 222006
摘    要:帧差法和背景差分法是目前常用的基于视频的运动目标检测方法。首先从帧差法和背景差分法中选取了几种具有代表性的算法;然后针对典型场景条件对这些方法进行了实验测试,并利用实验结果对算法进行了定性和定量的比较和分析。实验结果表明,ViBe算法、码本模型、混合高斯模型、自适应混合高斯模型、中值滤波和自适应背景建模具有较好的检测效果,但任何一种方法都有其局限性。

关 键 词:运动目标检测  帧差法  背景差分法
收稿时间:2012-05-02
修稿时间:2012-08-13

Comparison and Analysis of Video-based Moving Object Detection Algorithms
WANG Qiang and ZHAO Shu-bin. Comparison and Analysis of Video-based Moving Object Detection Algorithms[J]. Command Control & Simulation, 2012, 34(6): 36-40,83
Authors:WANG Qiang and ZHAO Shu-bin
Affiliation:Jiangsu Automation Research Institute,Jiangsu Automation Research Institute
Abstract:Frame subtraction and background subtraction methods are widely used in video-based moving object detection methods. First, several typical algorithms are selected from frame subtraction and background subtraction methods. Then, experiments are conducted for several typical background conditions, and the experimental results are shown for qualitative and quantitative comparison and performance judgement. Experimental results indicate that the detection results of ViBe algorithm, codebook model, mixture Gaussian model, adaptive mixture Gaussian model, median filter and adaptive background model are better than others, but any method has its limitation.
Keywords:moving object detection   frame subtraction   background subtraction
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