用混合图结构提升稀疏切片下多孔材料3D重建的几何拓扑精度
GeoTopoDiff: Learning Geometry--Topology Graph Priors through Boundary-Constrained Mixed Diffusion for Sparse-Slice 3D Porous Reconstruction

- 将扩散模型从体素空间转到融合几何与拓扑的混合图空间
- 在稀疏切片下使形态误差降19.8%,输运相关拓扑误差降36.5%
- 适合做工业级3D多孔材料模拟的科研与工程人员
基于扩散的体素先验建模在大规模3D多孔微结构重建中面临挑战。由于需同时建模连续孔隙形貌与离散孔喉拓扑,现有扩散模型依赖全分辨率CT扫描提供拓扑保真的先验,导致实际工业应用中吞吐量、拓扑保真度与视场间存在固有权衡。本文提出GeoTopoDiff,一种基于图扩散的框架,可从稀疏CT切片重建3D多孔微结构。该方法将扩散先验学习从体素空间转移到混合图状态空间,同时包含连续孔隙几何与离散孔喉拓扑。引入基于稀疏观测的拓扑感知部分图先验,约束反向去噪过程。在各向异性PTFE与Fontainebleau砂岩数据集上的实验表明,GeoTopoDiff平均降低形态相关误差19.8%,拓扑敏感输运误差36.5%。结果表明,混合图状态空间能有效降低稀疏观测下的后验不确定性。所有模型与代码均已公开,促进扩散模型在3D多孔微结构模拟中的探索。
原文摘要 · Abstract (English)
Diffusion-based voxel prior modelling is challenging for the reconstruction of large-scale 3D porous microstructures. Due to the demanding requirements for simultaneously modelling both the continuous pore morphology and the discrete pore-throat topology, the diffusion models require fully observed CT scans to provide topology-faithful priors, which results in an inherent trade-off among throughput, topological fidelity, and field of view in practical industrial applications. We propose GeoTopoDiff, a graph diffusion-based framework for reconstructing 3D porous microstructures from sparse CT slices. GeoTopoDiff transfers the learning of diffusion priors from a voxel-based space to a mixed graph state space, which simultaneously encompasses continuous pore geometry and discrete pore-throat topology. A topology-aware partial graph prior from sparsely observed CT slices is introduced to constrain the reverse denoising process. Experiments on anisotropic PTFE and Fontainebleau sandstone show that GeoTopoDiff reduces morphology-related errors by 19.8% and topology-sensitive transport errors by 36.5% on average. Our findings suggest that the mixed graph state space promotes the diffusion denoising process to reduce posterior uncertainty under a sparse observations. All models and code have been made publicly available to facilitate the exploration of diffusion models in the field of 3D porous microstructures simulation.
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