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Dense Optical Flow Estimation Using Sparse Regularizers From Reduced Measurements

delete2024-01-01
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OA
AI
M
Muhammad Wasim Nawaz
A
Abdesselam Bouzerdoum
M
Muhammad Mahboob Ur Rahman
G
Ghulam Abbas
F
Faizan Rashid *
DOI:10.1109/ACCESS.2024.3382818delete
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摘要

摘要

En 中文
Optical flow is the pattern of apparent motion of objects in a scene. The computation of optical flow is a critical component in numerous computer vision tasks such as object detection, visual object tracking, and activity recognition. Despite a lot of research, efficiently managing abrupt changes in motion remains a challenge in motion estimation. This paper proposes novel variational regularization methods to address this problem since they allow combining different mathematical concepts into a joint energy minimization framework. In this work, we incorporate concepts from signal sparsity into variational regularization for motion estimation. The proposed regularization uses robust l(1) norm, which promotes sparsity and handles motion discontinuities. By using this regularization, we promote the sparsity of the optical flow gradient. This sparsity helps recover a signal even with just a few measurements. We explore recovering optical flow from a limited set of linear measurements using this regularizer. Our findings show that leveraging the sparsity of the derivatives of optical flow reduces computational complexity and memory needs.
Keyword:
Energy minimization
motion discontinuities
optical flow
sparse regularizers
total variation

期刊

IEEE Access 封面图
IEEE Access
IF:
3.6
论文数:
9.8W
被引数:
29.4W

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U
University of Lahore
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3.4K
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K
king abdullah university of science & technology
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1.3W
论文数: 1.3W
被引数: 32
U
University of Wollongong
学者数:
1.3W
论文数: 1.6W
被引数: 2.8W
Q
qatar foundation (qf)
学者数:
6.3K
论文数: 7.0K
被引数: 8
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