让软机器人手指能大变形下仍实现高精度触觉感知
GelSight FlexiRay: Breaking Planar Limits by Harnessing Large Deformations for Flexible,Full-Coverage Multimodal Sensing
- 用多镜面结构适应软体手指的大变形,保持视觉通路畅通
- 触觉精度达0.14N,位置精度0.19mm,可测力、温、纹理、滑动
- 比现有柔性触觉传感器变形量大5倍,适合复杂抓取任务
将触觉传感集成到柔顺的软体机械手,是实现先进抓取和安全人机交互的重要途径。视觉触觉传感器利用廉价相机实现高分辨率、大面积触觉感知,但传统方案依赖刚性结构,牺牲了手指柔性和感知范围,难以在软体结构的大变形下工作,因形变会遮挡光路、限制相机视场。为此,我们提出GelSight FlexiRay,一种面向柔顺接触的多模态视觉触觉传感器,可与Finray Effect机械手集成,在显著结构变形下仍保持高性能。首先,采用多镜面配置,基于FRE机械手的力-形变特性进行系统建模与优化;其次,增强其类人多模态感知能力,包括接触力与位置、本体感觉、温度、纹理及滑移检测。实验表明,该传感器在多种形变状态下均表现出稳健的触觉性能,力测量精度达0.14 N,本体定位精度为0.19 mm。相比当前最优柔性视觉触觉传感器,在相同负载下形变量提升5倍,感知面积更广,能有效区分接触信息并完成抓取与分类任务,展现出在软体机器人中实现多功能、大范围触觉感知的巨大潜力。本研究为柔顺机器人系统中的高分辨率触觉传感奠定了基础。
原文摘要 · Abstract (English)
The integration of tactile sensing into compliant soft robotic grippers offers a compelling pathway toward advanced robotic grasping and safer human-robot interactions. Visual-tactile sensors realize high-resolution, large-area tactile perception with affordable cameras. However, conventional visual-tactile sensors rely heavily on rigid forms, sacrificing finger compliance and sensing regions to achieve localized tactile feedback. Enabling seamless, large-area tactile sensing in soft grippers remains challenging, as deformations inherent to soft structures can obstruct the optical path and restrict the camera's field of view. To address these, we present Gelsight FlexiRay, a multimodal visual-tactile sensor designed for safe and compliant interactions with substantial structural deformation through integration with Finray Effect grippers. First, we adopt a multi-mirror configuration, which is systematically modeled and optimized based on the physical force-deformation characteristics of FRE grippers. Second, we enhanced Gelsight FlexiRay with human-like multimodal perception, including contact force and location, proprioception, temperature, texture, and slippage. Experiments demonstrate Gelsight FlexiRay's robust tactile performance across diverse deformation states, achieving a force measurement accuracy of 0.14 N and proprioceptive positioning accuracy of 0.19 mm. Compared with state of art compliant VTS, the FlexiRay demonstrates 5 times larger structural deformation under the same loads. Its expanded sensing area and ability to distinguish contact information and execute grasping and classification tasks highlights its potential for versatile, large-area multimodal tactile sensing integration within soft robotic systems. This work establishes a foundation for flexible, high-resolution tactile sensing in compliant robotic applications.
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