Seal-3D: Interactive Pixel-Level Editing for Neural Radiance Fields
Xiangyu Wang, Jingsen Zhu, Qi Ye, Yuchi Huo, Yunlong Ran, Zhihua Zhong, Jiming Chen
摘要
With the popularity of implicit neural representations, or neural radiance fields (NeRF), there is a pressing need for editing methods to interact with the implicit 3D models for tasks like post-processing reconstructed scenes and 3D content creation. While previous works have explored NeRF editing from various perspectives, they are restricted in editing flexibility, quality, and speed, failing to offer direct editing response and instant preview. The key challenge is to conceive a locally editable neural representation that can directly reflect the editing instructions and update instantly. To bridge the gap, we propose a new interactive editing method and system for implicit representations, called Seal-3D 1, which allows users to edit NeRF models in a pixel-level and free manner with a wide range of NeRF-like backbone and preview the editing effects instantly. To achieve the effects, the challenges are addressed by our proposed proxy function mapping the editing instructions to the original space of NeRF models in the teacher model and a two-stage training strategy for the student model with local pretraining and global finetuning. A NeRF editing system is built to showcase various editing types. Our system can achieve compelling editing effects with an interactive speed of about 1 second.
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引用它的顶会 Paper9
- 3D Gaussian Editing with A Single ImageGuan Luo, Tian-Xing Xu, Ying-Tian Liu, Xiaoxiong Fan 等ACM MM 2024 · 被引用 7 次
- IReNe: Instant Recoloring of Neural Radiance FieldsAlessio Mazzucchelli, Adrian Garcia-Garcia, Elena Garces, Fernando Rivas-Manzaneque 等CVPR 2024 · 被引用 5 次
- CADMorph: Geometry‑Driven Parametric CAD Editing via a Plan-Generate-Verify LoopWeijian Ma, Shizhao Sun, Ruiyu Wang, Jiang BianNeurIPS 2025 · 被引用 4 次
- Enhancing Close-up Novel View Synthesis via Pseudo-labelingJiatong Xia, Libo Sun, Lingqiao LiuAAAI 2025 · 被引用 4 次
- NeRFDeformer: NeRF Transformation from a Single View via 3D Scene FlowsZhenggang Tang, Zhongzheng Ren, Xiaoming Zhao, Bowen Wen 等CVPR 2024 · 被引用 3 次
它引用的顶会 Paper21
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- NeuS: Learning Neural Implicit Surfaces by Volume Rendering for Multi-view ReconstructionPeng Wang, Lingjie Liu, Yuan Liu, Christian Theobalt 等NeurIPS 2021 · 被引用 2,500 次
- Volume Rendering of Neural Implicit SurfacesLior Yariv, Jiatao Gu, Yoni Kasten, Yaron LipmanNeurIPS 2021 · 被引用 1,421 次
- Plenoxels: Radiance Fields without Neural NetworksSara Fridovich-Keil, Alex Yu, Matthew Tancik, Qinhong Chen 等CVPR 2022 · 被引用 1,237 次
- Direct Voxel Grid Optimization: Super-fast Convergence for Radiance Fields ReconstructionCheng Sun, Min Sun, Hwann-Tzong ChenCVPR 2022 · 被引用 859 次
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