Fast Light-field Disparity Estimation with Multi-disparity-scale Cost Aggregation
Zhicong Huang, Xuemei Hu, Zhou Xue, Weizhu Xu, Tao Yue
Abstract
Light field images contain both angular and spatial information of captured light rays. The rich information of light fields enables straightforward disparity recovery capability but demands high computational cost as well. In this paper, we design a lightweight disparity estimation model with physical-based multi-disparity-scale cost volume aggregation for fast disparity estimation. By introducing a sub-network of edge guidance, we significantly improve the recovery of geometric details near edges and improve the overall performance. We test the proposed model extensively on both synthetic and real-captured datasets, which provide both densely and sparsely sampled light fields. Finally, we significantly reduce computation cost and GPU memory consumption, while achieving comparable performance with state-of-the-art disparity estimation methods for light fields. Our source code is available at https: //github.com/zcong17huang/FastLFnet .
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Cited by top-tier papers3
- Occlusion-Aware Cost Constructor for Light Field Depth EstimationYingqian Wang, Longguang Wang, Zhengyu Liang, Jun-Gang Yang et al.CVPR 2022 · 96 citations
- Take Your Model Further: A General Post-refinement Network for Light Field Disparity Estimation via BadPix CorrectionRongshan Chen, Hao Sheng, Da Yang, Sizhe Wang et al.AAAI 2023 · 22 citations
- CutMIB: Boosting Light Field Super-Resolution via Multi-View Image BlendingZeyu Xiao, Yutong Liu, Ruisheng Gao, Zhiwei XiongCVPR 2023
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- Attention-Based View Selection Networks for Light-Field Disparity EstimationYu-Ju Tsai, Yu-Lun Liu, Ming Ouhyoung, Yung-Yu ChuangAAAI 2020 · 115 citations
- AANet: Adaptive Aggregation Network for Efficient Stereo MatchingHaofei Xu, Juyong ZhangCVPR 2020
- Structure-Preserving Super Resolution With Gradient GuidanceCheng Ma, Yongming Rao, Yean Cheng, Ce Chen et al.CVPR 2020
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