arXiv:2603.26260cs.CVcs.AI2026-03中稿 · CVPR被引 3

用分层几何信息提升3D语义分割的开放词汇能力

GeoGuide: Hierarchical Geometric Guidance for Open-Vocabulary 3D Semantic Segmentation

  • 通过点级不确定度融合几何与语义特征
  • 重建完整实例掩码增强类别内一致性
  • 适合需要高精度3D分割的开放词汇场景

开放词汇3D语义分割旨在识别训练集外的任意类别。现有方法多依赖2D开放词汇模型的知识蒸馏,但将3D特征对齐至2D表示空间限制了内在的3D几何学习,并继承了2D预测的误差。为此,我们提出GeoGuide,一种利用预训练3D模型实现分层几何-语义一致性的新框架。具体地,引入基于不确定性的超点蒸馏模块,融合几何与语义特征以估计点级不确定度,自适应加权超点内的2D特征,在抑制噪声的同时保留判别信息,增强局部语义一致性。此外,实例级掩码重建模块利用几何先验,通过重建完整实例掩码来强化实例内语义一致性。同时,跨实例关系一致性模块对齐几何与语义相似性矩阵,校准同类物体间的跨实例一致性,缓解视角变化引起的语义漂移。在ScanNet v2、Matterport3D和nuScenes上的大量实验表明,GeoGuide表现更优。

原文摘要 · Abstract (English)

Open-vocabulary 3D semantic segmentation aims to segment arbitrary categories beyond the training set. Existing methods predominantly rely on distilling knowledge from 2D open-vocabulary models. However, aligning 3D features to the 2D representation space restricts intrinsic 3D geometric learning and inherits errors from 2D predictions. To address these limitations, we propose GeoGuide, a novel framework that leverages pretrained 3D models to integrate hierarchical geometry-semantic consistency for open-vocabulary 3D segmentation. Specifically, we introduce an Uncertainty-based Superpoint Distillation module to fuse geometric and semantic features for estimating per-point uncertainty, adaptively weighting 2D features within superpoints to suppress noise while preserving discriminative information to enhance local semantic consistency. Furthermore, our Instance-level Mask Reconstruction module leverages geometric priors to enforce semantic consistency within instances by reconstructing complete instance masks. Additionally, our Inter-Instance Relation Consistency module aligns geometric and semantic similarity matrices to calibrate cross-instance consistency for same-category objects, mitigating viewpoint-induced semantic drift. Extensive experiments on ScanNet v2, Matterport3D, and nuScenes demonstrate the superior performance of GeoGuide.

3D分割开放词汇几何引导语义一致性

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