arXiv:2603.18784cs.RO2026-03中稿 · ICRA被引 1

融合视觉与触觉的仿人操作,实现柔性物体1D/2D追踪

ViTac-Tracing: Visual-Tactile Imitation Learning of Deformable Object Tracing

  • 通过视觉与触觉联合感知,设计局部加权损失与全局任务损失
  • 在真实场景中对可见/不可见柔性物体分别达80%和65%成功率
  • 低成本遥操作硬件系统适配触觉反馈,适合机器人柔性物抓取

柔性物体常以非结构化方式出现。追踪柔性物体有助于将其展开并为后续操作任务提供支持。由于需要针对特定物体建模或进行仿真到现实的迁移,现有追踪方法要么在不同类别柔性物体间泛化能力不足,要么在真实世界中难以可靠完成任务。为此,我们提出一种新型视觉-触觉模仿学习方法,用统一模型实现一维(1D)和二维(2D)柔性物体追踪。方法从局部与全局视角出发,结合视觉与触觉感知:局部上引入加权损失,强调保持触觉图像中心附近接触的动作,提升精细调节能力;全局上提出追踪任务损失,帮助策略调控任务进展。硬件方面,为弥补仅靠视觉信息提取特征有限的问题,将触觉传感集成到低成本遥操作平台,兼顾操作员与机器人需求。在多种1D与2D柔性物体上的大量消融与对比实验表明,该方法有效,对已见物体平均成功率达80%,对未见物体达65%。

原文摘要 · Abstract (English)

Deformable objects often appear in unstructured configurations. Tracing deformable objects helps bringing them into extended states and facilitating the downstream manipulation tasks. Due to the requirements for object-specific modeling or sim-to-real transfer, existing tracing methods either lack generalizability across different categories of deformable objects or struggle to complete tasks reliably in the real world. To address this, we propose a novel visual-tactile imitation learning method to achieve one-dimensional (1D) and two-dimensional (2D) deformable object tracing with a unified model. Our method is designed from both local and global perspectives based on visual and tactile sensing. Locally, we introduce a weighted loss that emphasizes actions maintaining contact near the center of the tactile image, improving fine-grained adjustment. Globally, we propose a tracing task loss that helps the policy to regulate task progression. On the hardware side, to compensate for the limited features extracted from visual information, we integrate tactile sensing into a low-cost teleoperation system considering both the teleoperator and the robot. Extensive ablation and comparative experiments on diverse 1D and 2D deformable objects demonstrate the effectiveness of our approach, achieving an average success rate of 80% on seen objects and 65% on unseen objects.

模仿学习触觉感知柔性物体机器人操作

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