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WRD-Net: Water Reflection Detection Using A Parallel Attention Transformer

journal contribution
posted on 2024-04-08, 15:47 authored by H Dong, H Qi, Huiyu Zhou, J Dong, X Dong

In contrast to symmetry detection, Water Reflection Detection (WRD) is less studied. We treat this topic as a Symmetry Axis Point Prediction task which outputs a set of points by implicitly learning Gaussian heat maps and explicitly learning numerical coordinates. We first collect a new data set, namely, the Water Reflection Scene Data Set (WRSD). Then, we introduce a novel Water Reflection Detection Network, i.e., WRD-Net. This network is built on top of a series of Parallel Attention Vision Transformer blocks with the Atrous Spatial Pyramid (ASP-PAViT) that we deliberately design. Each block captures both the local and global features at multiple scales. To our knowledge, neither the WRSD nor the WRD-Net has been used for water reflection detection before. To derive the axis of symmetry, we perform Principal Component Analysis (PCA) on the points predicted. Experimental results show that the WRD-Net outperforms its counterparts and achieves the true positive rate of 0.823 compared with the human annotation.

Funding

National Natural Science Foundation of China (NSFC) (No. 42176196) and was in part supported by the Young Taishan Scholars Program (No. tsqn201909060)

History

Author affiliation

College of Science & Engineering/Comp' & Math' Sciences

Version

  • AM (Accepted Manuscript)

Published in

Pattern Recognition

Publisher

Elsevier

issn

0031-3203

eissn

1873-5142

Copyright date

2024

Available date

2025-04-03

Language

en

Deposited by

Professor Huiyu Zhou

Deposit date

2024-04-01

Data Access Statement

Data will be made available on request

Rights Retention Statement

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