用简单接触实现曲面触觉传感器高精度三维重建校准
NLiPsCalib: An Efficient Calibration Framework for High-Fidelity 3D Reconstruction of Curved Visuotactile Sensors
- 通过近场光照与光度立体法,仅需日常物体接触即可完成校准
- 在多种曲面形态上实现高保真3D重建,误差显著低于传统方法
- 适合想快速开发定制化触觉传感器的研究者和工程师
近年来,仿生曲面触觉传感器在提升传感运动能力方面日益普及。尽管这些传感器能更贴合物体表面,但非均匀光照会降低感知质量,影响重建精度,通常需复杂校准。现有方法依赖定制压头和专用设备采集大规模光度数据,过程昂贵且费力。为此,本文提出NLiPsCalib——一种物理一致且高效的曲面触觉传感器校准框架。该框架结合可控近场光源,利用近场光度立体(NLiPs)估计接触几何,将校准简化为仅几次与日常物品的接触。我们进一步设计了可控光源触觉传感器NLiPsTac以验证该框架。实验表明,本方法能在多种曲面形态下实现高保真3D重建,且校准流程极简。本方案显著降低了定制化曲面触觉传感器的开发门槛,使触觉感知技术更易被广泛采用。
原文摘要 · Abstract (English)
Recent advances in visuotactile sensors increasingly employ biomimetic curved surfaces to enhance sensorimotor capabilities. Although such curved visuotactile sensors enable more conformal object contact, their perceptual quality is often degraded by non-uniform illumination, which reduces reconstruction accuracy and typically necessitates calibration. Existing calibration methods commonly rely on customized indenters and specialized devices to collect large-scale photometric data, but these processes are expensive and labor-intensive. To overcome these calibration challenges, we present NLiPsCalib, a physics-consistent and efficient calibration framework for curved visuotactile sensors. NLiPsCalib integrates controllable near-field light sources and leverages Near-Light Photometric Stereo (NLiPs) to estimate contact geometry, simplifying calibration to just a few simple contacts with everyday objects. We further introduce NLiPsTac, a controllable-light-source tactile sensor developed to validate our framework. Experimental results demonstrate that our approach enables high-fidelity 3D reconstruction across diverse curved form factors with a simple calibration procedure. We emphasize that our approach lowers the barrier to developing customized visuotactile sensors of diverse geometries, thereby making visuotactile sensing more accessible to the broader community.
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