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Xiangwei Jiang

2 accepted papers

2026

CUEMP: Correspondence Uncertainty Estimation With Motion Priors for Dense Visual Odometry

RA-L 2026

Deep dense visual odometry has made significant advancements by leveraging dense flow fields. However, current mainstream flow-based visual odometry methods often fail to suppress the visual similarity noise in correlation volumes and rely on the inefficient four-scale pyramids for correlation sampl

Cited by 0SourcecodeScholar
2022

Revisiting Document Image Dewarping by Grid Regularization

CVPR 2022poster

This paper addresses the problem of document image dewarping, which aims at eliminating the geometric distortion in document images for document digitization. Instead of designing a better neural network to approximate the optical flow fields between the inputs and outputs, we pursue the best readab…

Cited by 34PDFcodeScholar