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NeAT: Neural Adaptive Tomography

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arxiv 2202.02171 v1 pith:MBMUUWID submitted 2022-02-04 cs.CV cs.GReess.IV

classification cs.CVcs.GReess.IV
keywords neuraladaptiveneatrenderingtomographyexistingexplicitfeatures
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In this paper, we present Neural Adaptive Tomography (NeAT), the first adaptive, hierarchical neural rendering pipeline for multi-view inverse rendering. Through a combination of neural features with an adaptive explicit representation, we achieve reconstruction times far superior to existing neural inverse rendering methods. The adaptive explicit representation improves efficiency by facilitating empty space culling and concentrating samples in complex regions, while the neural features act as a neural regularizer for the 3D reconstruction. The NeAT framework is designed specifically for the tomographic setting, which consists only of semi-transparent volumetric scenes instead of opaque objects. In this setting, NeAT outperforms the quality of existing optimization-based tomography solvers while being substantially faster.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. $K$-NeAS: Scalable Multi-Material CT Reconstruction Using Neural SDFs

    cs.CV 2026-07 conditional novelty 5.0 of 10

    K-NeAS extends NeAS to an arbitrary number of materials via a shared latent backbone, a differentiable sequential occupancy selector, and GMM-derived attenuation bounds, improving 3D PSNR on multiple CBCT datasets.

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