cs.AI updates on arXiv.org 07月03日
Tile and Slide : A New Framework for Scaling NeRF from Local to Global 3D Earth Observation
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本文提出Snake-NeRF,一种适用于大型场景的3D重建框架,通过优化内存占用和图像加载,实现高效处理大型卫星图像,并保证重建质量。

arXiv:2507.01631v1 Announce Type: cross Abstract: Neural Radiance Fields (NeRF) have recently emerged as a paradigm for 3D reconstruction from multiview satellite imagery. However, state-of-the-art NeRF methods are typically constrained to small scenes due to the memory footprint during training, which we study in this paper. Previous work on large-scale NeRFs palliate this by dividing the scene into NeRFs. This paper introduces Snake-NeRF, a framework that scales to large scenes. Our out-of-core method eliminates the need to load all images and networks simultaneously, and operates on a single device. We achieve this by dividing the region of interest into NeRFs that 3D tile without overlap. Importantly, we crop the images with overlap to ensure each NeRFs is trained with all the necessary pixels. We introduce a novel $2\times 2$ 3D tile progression strategy and segmented sampler, which together prevent 3D reconstruction errors along the tile edges. Our experiments conclude that large satellite images can effectively be processed with linear time complexity, on a single GPU, and without compromise in quality.

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Snake-NeRF 3D重建 大型场景 卫星图像 NeRF
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