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SparseSurf: Sparse-View 3D Gaussian Splatting for Surface Reconstruction

  • Meiying Gu
  • , Jiawei Zhang
  • , Jiahe Li
  • , Xiaohan Yu
  • , Haonan Luo
  • , Jin Zheng*
  • , Xiao Bai*
  • *Corresponding author for this work
  • Beihang University
  • Macquarie University
  • Southwest Jiaotong University

Research output: Contribution to journalConference articlepeer-review

Abstract

Recent advances in optimizing Gaussian Splatting for scene geometry have enabled efficient reconstruction of detailed surfaces from images. However, when input views are sparse, such optimization is prone to overfitting, leading to suboptimal reconstruction quality. Existing approaches address this challenge by employing flattened Gaussian primitives to better fit surface geometry, combined with depth regularization to alleviate geometric ambiguities under limited viewpoints. Nevertheless, the increased anisotropy inherent in flattened Gaussians exacerbates overfitting in sparse-view scenarios, hindering accurate surface fitting and degrading novel view synthesis performance. In this paper, we propose SparseSurf, a method that reconstructs more accurate and detailed surfaces while preserving high-quality novel view rendering. Our key insight is to introduce Stereo Geometry-Texture Alignment, which bridges rendering quality and geometry estimation, thereby jointly enhancing both surface reconstruction and view synthesis. In addition, we present a Pseudo-Feature Enhanced Geometry Consistency that enforces multi-view geometric consistency by incorporating both training and unseen views, effectively mitigating overfitting caused by sparse supervision. Extensive experiments on the DTU, BlendedMVS, and Mip-NeRF360 datasets demonstrate that our method achieves the state-of-the-art performance.

Original languageEnglish
Pages (from-to)4311-4319
Number of pages9
JournalProceedings of the AAAI Conference on Artificial Intelligence
Volume40
Issue number6
DOIs
StatePublished - 2026
Event40th AAAI Conference on Artificial Intelligence, AAAI 2026 - Singapore, Singapore
Duration: 20 Jan 202627 Jan 2026

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