Optical Flow Estimation Based on the Frequency-Domain Regularization

被引:11
|
作者
Chen, Jun [1 ]
Lai, Jianhuang [2 ,3 ]
Cai, Zemin [4 ,5 ]
Xie, Xiaohua [2 ,3 ]
Pan, Zhigeng [6 ]
机构
[1] Foshan Univ, Sch Ind Design & Ceram Art, Foshan 528000, Peoples R China
[2] Sun Yat Sen Univ, Sch Data & Comp Sci, Guangzhou 510006, Peoples R China
[3] Sun Yat Sen Univ, Minist Educ, Key Lab Machine Intelligence & Adv Comp, Guangzhou 510006, Peoples R China
[4] Shantou Univ, Sch Engn, Dept Elect Engn, Shantou 515063, Peoples R China
[5] Guangdong Prov Key Lab Digital Signal & Image Pro, Shantou 515063, Peoples R China
[6] Foshan Univ, Guangdong Acad Res VR Ind, Foshan 528000, Peoples R China
基金
中国国家自然科学基金;
关键词
Optical flow estimation; frequency-domain regularization; total variation; wavelet transform; PATCHMATCH;
D O I
10.1109/TCSVT.2020.2974490
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Accurate optical flow estimation with the frequency-domain regularization is a challenging problem in computer vision. In this paper, we solve this issue by introducing a novel optical flow method related to the frequency domain that uses TV-wavelet regularization. Specifically, we regard TV-wavelet regularization as a filtering process. After wavelet transform for optical flow field, we firstly remove outliers by performing a threshold operation. Then, we make up for lost motion information (such as flow edges and important motion details) determined by these missing or damaged wavelet coefficients by adding TV-wavelet coefficients that are obtained from transform spectrum of the prior flow geometrical features, which are controlled by the image structures. By combining the advantages of total variation to recover geometric structures with the strengths of wavelet representation to remove outliers, the proposed method significantly outperforms the current frequency-domain optical flow methods in removing outliers, preserving sharp flow edges, and restoring important motion details. It also shows competitive optical flow evaluation results on the challenging MPI-Sintel, Kitti, and Middlebury datasets.
引用
收藏
页码:217 / 230
页数:14
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