arXiv:2606.18153cs.CV2026-06

用NeRF提升森林三维重建精度,助力气候与防火研究。

Neural Tree Reconstruction for the Open Forest Observatory

论文配图:Neural Tree Reconstruction for the Open Forest Observatory
图 1 · 摘自论文原文
  • 用NeRF替代传统方法,改善稀疏视角下的树体重建
  • 显著减少森林地表误建,提升3D模型细节与可靠性
  • 适合生态、林业及气候建模研究人员使用

开放森林观测站(Open Forest Observatory, OFO)是高校及其他机构合作项目,致力于为生态学家、土地管理者和公众提供低成本森林测绘方案。OFO构建了地理空间森林数据数据库,并开发了基于无人飞行器的开源测绘方法。这些数据可用于优先制定植树计划、评估野火风险及监测碳吸收。当前版本的森林地图数据库采用经典结构光测法生成3D树图,但该方法易产生伪影,细节不足,尤其在光照受限的林下区域表现差。这些重建误差可能影响下游科学任务(如野火模拟)。近年来,3D重建技术如神经辐射场(NeRF)可实现更高质量结果,对稀疏视图更具鲁棒性,并支持数据驱动先验。本文探索将NeRF集成至OFO数据集的方法,规划未来引入更先进3D视觉模型的技术路线,并强调高精度3D重建对林业应用的重要性。

原文摘要 · Abstract (English)

The Open Forest Observatory (OFO) is a collaboration across universities and other partners to make low-cost forest mapping accessible to ecologists, land managers, and the general public. The OFO is building both a database of geospatial forest data as well as open-source methods and tools for forest mapping by uncrewed aerial vehicle. Such data are useful for a variety of climate applications including prioritizing reforestation efforts, informing wildfire hazard reduction, and monitoring carbon sequestration. In the current iteration of the OFO's forest map database, 3D tree maps are created using classical structure-from-motion techniques. This approach is prone to artifacts, lacks detail, and has particular difficulty on the forest floor where the input data (overhead imagery) has limited visibility. These reconstruction errors can potentially propagate to the downstream scientific tasks (e.g. a wildfire simulation.) Advances in 3D reconstruction, including methods like Neural Radiance Fields (NeRF), produce higher quality results that are more robust to sparse views and support data-driven priors. We explore ways to incorporate NeRFs into the OFO dataset, outline future work to support even more state-of-the-art 3D vision models, and describe the importance of high-quality 3D reconstructions for forestry applications.

3D重建森林测绘NeRF林业应用

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