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◆ IEEE transactions on visualization and computer graphics2026-08-26

PACG: Prior-Guided Sparse Surface Reconstruction With Complementary Densification-Pruning Based on Gaussian Splatting.

Yibin Zhao, Jianjun Yi, Yihan Pan, Jun Nan

原始摘要(英文原文)· Original abstract
Gaussian Splatting has emerged as a new trend in surface reconstruction methods due to its camera-level novel view synthesis and accurate reconstruction. However, existing approaches mainly rely on dense views, often suffering from overfitting of Gaussian primitives that generate catastrophic floaters in sparse-view scenes, significantly degrading reconstruction accuracy. In this work, we propose PACG, a novel sparse-view surface reconstruction framework that integrates prior models with complementary densification-pruning. Specifically, PACG leverages the robust priors of Diffusion model and Feedforward model to initialize reconstruction. A coarse-to-fine geometry-aware loss ensures optimization stability, while gradient-uncollision densification and contribution-based pruning are employed during optimization to suppress floaters. PACG demonstrates superior performance over existing methods, achieving SOTA results on widely used DTU, Replica and BlendedMVS datasets.
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PACG: Prior-Guided Sparse Surface Reconstruction With Complementary Densification-Pruning Based on Gaussian Splatting. — 科研速览 Science Skim