UP-NeRF: Unconstrained Pose Prior-Free Neural Radiance Field
Injae Kim, Minhyuk Choi, Hyunwoo J. Kim
摘要
Neural Radiance Field (NeRF) has enabled novel view synthesis with high fidelity given images and camera poses. Subsequent works even succeeded in eliminating the necessity of pose priors by jointly optimizing NeRF and camera pose. However, these works are limited to relatively simple settings such as photometrically consistent and occluder-free image collections or a sequence of images from a video. So they have difficulty handling unconstrained images with varying illumination and transient occluders. In this paper, we propose (nconstrained ose-prior-free ural adiance ields) to optimize NeRF with unconstrained image collections without camera pose prior. We tackle these challenges with surrogate tasks that optimize color-insensitive feature fields and a separate module for transient occluders to block their influence on pose estimation. In addition, we introduce a candidate head to enable more robust pose estimation and transient-aware depth supervision to minimize the effect of incorrect prior. Our experiments verify the superior performance of our method compared to the baselines including BARF and its variants in a challenging internet photo collection, dataset.
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引用它的顶会 Paper5
- 4D Gaussian Splatting in the Wild with Uncertainty-Aware RegularizationMijeong Kim, Jongwoo Lim, Bohyung HanNeurIPS 2024 · 被引用 33 次
- SU-RGS: Relightable 3D Gaussian Splatting from Sparse Views Under Unconstrained IlluminationsQi Zhang, Chi Huang, Qian Zhang, Nan Li 等ICCV 2025 · 被引用 1 次
- Flow-NeRF: Joint Learning of Geometry, Poses, and Dense Flow within Unified Neural RepresentationsXunzhi Zheng, Dan XuCVPR 2025
- NeRF-HuGS: Improved Neural Radiance Fields in Non-static Scenes Using Heuristics-Guided SegmentationJiahao Chen, Yipeng Qin, Lingjie Liu, Jiangbo Lu 等CVPR 2024
- MU-GeNeRF: Multi-view Uncertainty-guided Generalizable Neural Radiance Fields for Distractor-aware SceneWenjie Mu, Zhan Li, Chuanzhou Su, Xuanyi Shen 等CVPR 2026
它引用的顶会 Paper3
- Emerging Properties in Self-Supervised Vision TransformersMathilde Caron, Hugo Touvron, Ishan Misra, Hervé Jégou 等ICCV 2021 · 被引用 8,921 次
- Vision Transformers for Dense PredictionRené Ranftl, Alexey Bochkovskiy, Vladlen KoltunICCV 2021 · 被引用 2,647 次
- NoPe-NeRF: Optimising Neural Radiance Field with No Pose PriorWenjing Bian, Zirui Wang, Kejie Li, Jia-Wang BianCVPR 2023
相关 Paper
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