Papers › Semantic Line Detection Using Mirror Attention and Comparative Ranking and Matching

Semantic Line Detection Using Mirror Attention and Comparative Ranking and Matching

29 Mar 2022ECCV 2020 8arXiv:2203.15285archive 2025-07-28

Dongkwon Jin, Jun-Tae Lee, Chang-Su Kim

A novel algorithm to detect semantic lines is proposed in this paper. We develop three networks: detection network with mirror attention (D-Net) and comparative ranking and matching networks (R-Net and M-Net). D-Net extracts semantic lines by exploiting rich contextual information. To this end, we design the mirror attention module. Then, through pairwise comparisons of extracted semantic lines, we iteratively select the most semantic line and remove redundant ones overlapping with the selected one. For the pairwise comparisons, we develop R-Net and M-Net in the Siamese architecture. Experiments demonstrate that the proposed algorithm outperforms the conventional semantic line detector significantly. Moreover, we apply the proposed algorithm to detect two important kinds of semantic lines successfully: dominant parallel lines and reflection symmetry axes. Our codes are available at https://github.com/dongkwonjin/Semantic-Line-DRM.

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Code

dongkwonjin/Semantic-Line-DRM officialmentioned in papermentioned on GitHubpytorchMIT report

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Tasks

Line Detection

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Line Detection SEL DRM AUC_F 86.29 #2 of 3 Archive leaderboard report
Line Detection SEL DRM HIoU 80.23 #2 of 3 Archive leaderboard report

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