arXiv:2601.13979cs.RO2026-01被引 1

融合视觉与触觉,实现被遮挡电缆的精准3D重建

Active Cross-Modal Visuo-Tactile Perception of Deformable Linear Objects

  • 用视觉+触觉双模态感知,自动识别并补全遮挡段
  • 在大范围遮挡下仍能完成复杂弯曲电缆的完整重建
  • 适合需要精确抓取变形物体的机器人场景

本文提出一种新型跨模态视觉-触觉感知框架,用于可变形线状物体(如电缆)的三维形状重建,尤其针对严重视觉遮挡的情况。不同于依赖视觉为主的方法(受光照、背景杂乱或部分可见性影响性能),该方法结合基于基础模型的视觉感知与自适应触觉探索。视觉流程采用SAM进行实例分割,Florence进行语义优化,随后执行骨架提取、端点检测和点云生成;被遮挡段由触觉传感器自主探测,提供局部点云,并通过欧氏聚类与拓扑保持融合算法与视觉数据合并。最后,基于端点引导的点排序与B样条插值,生成平滑完整的电缆形状。实验使用配备RGB-D相机和触觉垫的机械臂验证,结果表明该框架能在大范围遮挡下准确重建单根或多根简单或高度弯曲的电缆配置。这些成果凸显了基础模型增强的跨模态感知在提升机器人对可变形物体操作能力方面的潜力。

原文摘要 · Abstract (English)

This paper presents a novel cross-modal visuo-tactile perception framework for the 3D shape reconstruction of deformable linear objects (DLOs), with a specific focus on cables subject to severe visual occlusions. Unlike existing methods relying predominantly on vision, whose performance degrades under varying illumination, background clutter, or partial visibility, the proposed approach integrates foundation-model-based visual perception with adaptive tactile exploration. The visual pipeline exploits SAM for instance segmentation and Florence for semantic refinement, followed by skeletonization, endpoint detection, and point-cloud extraction. Occluded cable segments are autonomously identified and explored with a tactile sensor, which provides local point clouds that are merged with the visual data through Euclidean clustering and topology-preserving fusion. A B-spline interpolation driven by endpoint-guided point sorting yields a smooth and complete reconstruction of the cable shape. Experimental validation using a robotic manipulator equipped with an RGB-D camera and a tactile pad demonstrates that the proposed framework accurately reconstructs both simple and highly curved single or multiple cable configurations, even when large portions are occluded. These results highlight the potential of foundation-model-enhanced cross-modal perception for advancing robotic manipulation of deformable objects.

触觉感知3D重建机器人操作多模态

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