Attention-Based View Selection Networks for Light-Field Disparity Estimation
Yu-Ju Tsai, Yu-Lun Liu, Ming Ouhyoung, Yung-Yu Chuang
摘要
This paper introduces a novel deep network for estimating depth maps from a light field image. For utilizing the views more effectively and reducing redundancy within views, we propose a view selection module that generates an attention map indicating the importance of each view and its potential for contributing to accurate depth estimation. By exploring the symmetric property of light field views, we enforce symmetry in the attention map and further improve accuracy. With the attention map, our architecture utilizes all views more effectively and efficiently. Experiments show that the proposed method achieves state-of-the-art performance in terms of accuracy and ranks the first on a popular benchmark for disparity estimation for light field images.
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引用它的顶会 Paper9
- Occlusion-Aware Cost Constructor for Light Field Depth EstimationYingqian Wang, Longguang Wang, Zhengyu Liang, Jun-Gang Yang 等CVPR 2022 · 被引用 96 次
- Attention-based Multi-Level Fusion Network for Light Field Depth EstimationJiaxin Chen, Shuo Zhang, Youfang LinAAAI 2021 · 被引用 69 次
- Fast Light-field Disparity Estimation with Multi-disparity-scale Cost AggregationZhicong Huang, Xuemei Hu, Zhou Xue, Weizhu Xu 等ICCV 2021 · 被引用 47 次
- Bridging Unsupervised and Supervised Depth from Focus via All-in-Focus SupervisionNing-Hsu Wang, Ren Wang, Yu-Lun Liu, Yu-Hao Huang 等ICCV 2021 · 被引用 44 次
- LFACon: Introducing Anglewise Attention to No-Reference Quality Assessment in Light Field SpaceQiang Qu, Xiaoming Chen, Yuk Ying Chung, Weidong CaiIEEE VR 2023 · 被引用 39 次
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