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基于贝叶斯学习的视频图像分割
引用本文:王林波,赵杰煜.基于贝叶斯学习的视频图像分割[J].中国图象图形学报,2005,10(9):1073-1078.
作者姓名:王林波  赵杰煜
作者单位:王林波(宁波大学信息学院计算机科学与技术研究所,宁波,315211)       赵杰煜(宁波大学信息学院计算机科学与技术研究所,宁波,315211)
基金项目:国家自然科学基金项目(NSFC-60273094)
摘    要:如果背景中光线变化,那么视频图像分割将会变得比较困难。为了对光线变化的图像进行顺利侵害,提出了一种利用贝叶斯学习方法来进行视频图像分割的算法,即先在每个像素点处对不断变化的背景建模,同时计算每个像素点处的颜色直方图,再用这些直方图来表示该像素点处特征向量的概率分布,然后用贝叶斯学习方法来进行判断,以确定在光线缓慢或者突然变化的时候,每个像素点是属于前景还是属于背景。

关 键 词:视频图像分割  贝叶斯学习  复杂背景模型
文章编号:1006-8961(2005)09-1073-06
收稿时间:2004-11-09
修稿时间:2005-03-29

Video Image Segmentation Based on Bayesian Learning
WANG Lin-bo,ZHAO Jie-yu and WANG Lin-bo,ZHAO Jie-yu.Video Image Segmentation Based on Bayesian Learning[J].Journal of Image and Graphics,2005,10(9):1073-1078.
Authors:WANG Lin-bo  ZHAO Jie-yu and WANG Lin-bo  ZHAO Jie-yu
Abstract:Segmentation becomes a difficult task when the background illumination changes.In this paper,we apply a Bayesian learning method into video segmentation.The constantly changing background has been modeled at the pixel level.The feature vector for each pixel is represented with a discrete probability distribution function.The histogram colors and co-occurrence vectors have been calculated.Bayesian learning has been used to obtain these probability distribution functions from the video image inputs.The experimental results indicate that the proposed approach is able to learn a complex background of which the illumination changes either gradually or suddenly.
Keywords:video image segmentation  bayesian learning  complex background modeling
本文献已被 CNKI 维普 万方数据 等数据库收录!
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