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Visual Tracking Under Motion Blur

delete2016-12-01
delete63
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OA
AI
马波 cover
马波 (Bo Ma)
L
Lianghua Huang
沈
沈建冰 (Jianbing Shen) *
Ling Shao cover
Ling Shao (Ling Shao)
M
Ming–Hsuan Yang
F
Fatih Porikli
DOI:10.1109/TIP.2016.2615812delete
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Abstract

Abstract

En 中文
Most existing tracking algorithms do not explicitly consider the motion blur contained in video sequences, which degrades their performance in real-world applications where motion blur often occurs. In this paper, we propose to solve the motion blur problem in visual tracking in a unified framework. Specifically, a joint blur state estimation and multi-task reverse sparse learning framework are presented, where the closed-form solution of blur kernel and sparse code matrix is obtained simultaneously. The reverse process considers the blurry candidates as dictionary elements, and sparsely represents blurred templates with the candidates. By utilizing the information contained in the sparse code matrix, an efficient likelihood model is further developed, which quickly excludes irrelevant candidates and narrows the particle scale down. Experimental results on the challenging benchmarks show that our method performs well against the state-of-the-art trackers.
Keywords:
Motion blur
tracking
sparse representation
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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

IEEE Transactions on Image Processing cover
IEEE Transactions on Image Processing
IF:
13.7
Papers:
1.0W
Citations:
8.4W

Organization

U
University of California Merced
Scholars:
2.3K
Papers: 1.9K
Citations: 2
B
beijing institute of technology
Scholars:
5.5W
Papers: 4.0W
Citations: 63
University of California System cover
University of California System
Scholars:
37.7W
Papers: 33.8W
Citations: 6.6K
N
Northumbria University
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