NDDepth: Normal-Distance Assisted Monocular Depth Estimation
Shuwei Shao, Zhongcai Pei, Weihai Chen, Xingming Wu, Zhengguo Li
摘要
Monocular depth estimation has drawn widespread attention from the vision community due to its broad applications. In this paper, we propose a novel physics (geometry)-driven deep learning framework for monocular depth estimation by assuming that 3D scenes are constituted by piece-wise planes. Particularly, we introduce a new normal-distance head that outputs pixel-level surface normal and plane-to-origin distance for deriving depth at each position. Meanwhile, the normal and distance are regularized by a developed plane-aware consistency constraint. We further integrate an additional depth head to improve the robustness of the proposed framework. To fully exploit the strengths of these two heads, we develop an effective contrastive iterative refinement module that refines depth in a complementary manner according to the depth uncertainty. Extensive experiments indicate that the proposed method exceeds previous state-of-the-art competitors on the NYU-Depth-v2, KITTI and SUN RGB-D datasets. Notably, it ranks 1st among all submissions on the KITTI depth prediction online benchmark at the submission time. The source code is available at https://github.com/ShuweiShao/NDDepth.
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引用它的顶会 Paper19
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- Depth Anything: Unleashing the Power of Large-Scale Unlabeled DataLihe Yang, Bingyi Kang, Zilong Huang, Xiaogang Xu 等CVPR 2024 · 被引用 847 次
- IEBins: Iterative Elastic Bins for Monocular Depth EstimationShuwei Shao, Zhongcai Pei, Xingming Wu, Zhong Liu 等NeurIPS 2023 · 被引用 114 次
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- DCDepth: Progressive Monocular Depth Estimation in Discrete Cosine DomainKun Wang, Zhiqiang Yan, Junkai Fan, Wanlu Zhu 等NeurIPS 2024 · 被引用 29 次
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