Model update mechanism for mean-shift tracking
- 期刊名字:系统工程与电子技术(英文版)
- 文件大小:
- 论文作者:Peng Ningsong,Yang Jie,Liu Erq
- 作者单位:Institute of Image Processing and Pattern Recognition,Institute of Electronics and Information,The Second Academy of Chi
- 更新时间:2023-02-26
- 下载次数:次
论文简介
In order to solve the model update problem in mean-shift based tracker, a novel mechanism is proposed.Kalman filter is employed to update object model by filtering object kernel-histogram using previous model and current candidate. A self-tuning method is used for adaptively adjust all the parameters of the filters under the analysis of the filtering residuals. In addition, hypothesis testing servers as the criterion for determining whether to accept filtering result. Therefore, the tracker has the ability to handle occlusion so as to avoid over-update. The experimental results show that our method can not only keep up with the object appearance and scale changes but also be robust to occlusion.
论文截图
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