A survey on online learning for visual tracking

被引:0
作者
Mohammed Y. Abbass
Ki-Chul Kwon
Nam Kim
Safey A. Abdelwahab
Fathi E. Abd El-Samie
Ashraf A. M. Khalaf
机构
[1] Chungbuk National University,School of Information and Communication Engineering
[2] Atomic Energy Authority,Engineering Department, Nuclear Research Center
[3] Menoufia University,Department of Electronics and Electrical Communications Engineering, Faculty of Electronic Engineering
[4] Minia University,Electronics and Communications Department, Faculty of Engineering
[5] Princess Nourah Bint Abdulrahman University,Department of Information Technology, College of Computer and Information Sciences
来源
The Visual Computer | 2021年 / 37卷
关键词
Object tracking; Convolutional neural networks; Online learning; Deep learning; Real-time computer vision; Particle filter;
D O I
暂无
中图分类号
学科分类号
摘要
Visual object tracking has become one of the most active research topics in computer vision, which has been growing in commercial development as well as academic research. Many visual trackers have been proposed in the last two decades. Recent studies of computer vision for dynamic scenes include motion detection, object classification, environment modeling, tracking of moving objects, understanding of object behaviors, object identification, and data fusion from multiple sensors. This paper provides an in-depth overview of recent object tracking research. Object tracking tasks in realistic scenario often face challenging problems such as camera motion, occlusion, illumination effect, clutter, and similar appearance. A variety of tracker techniques have been published, which combine multiple techniques to solve multiple visual tracking sub-problems. This paper also reviews the latest research trend in object tracking based on convolutional neural networks, which is receiving growing attention. Finally, the paper discusses the future challenges and research directions for the object tracking problems that still need extensive studies in coming years.
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页码:993 / 1014
页数:21
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