用投影条纹实现高精度接触式三维测量,解决反光透明物成像难题。
Contact-Based Fringe Projection Profilometry for High-Resolution 3-D Surface Measurement of Reflective and Transparent Objects

- 基于条纹投影的接触式三角测量,通过涂层硅胶表面获取密集三维数据
- 相比GelSight Mini,深度精度更高,对反光/透明物体重建更稳定
- 适合机器人触觉感知、复杂表面高精度建模等场景
本文提出一种基于数字条纹投影(DFP)系统的接触式三维表面测量方法,属于以商业化成功的GelSight传感器为代表的视觉触觉传感家族。传统GelSight采用基于RGB LED的光度立体法,仅能间接推断深度,需积分表面梯度,易积累重建误差;且随着感测区域增大,校准难度上升,对高反射或透明物体的深度精度受限。为此,我们提出一种基于条纹投影的接触测量技术,在涂覆硅胶的接触表面实现基于三角测量的三维重建,提供接触区域内每像素的密集表面几何信息和全场三维形貌。通过集成高精度数字条纹投影,该方法简化了大区域校准流程,提升了复杂表面的深度精度。实验结果包括与GelSight Mini的直接对比、球体拟合精度评估及不确定性分析,证实所提方法显著提升结构光三维测量的准确性和稳定性,可可靠重构具有多样光学特性的物体。
原文摘要 · Abstract (English)
This paper presents a contact-based 3-D surface measurement method based on a Digital Fringe Projection (DFP) system, belonging to the vision-based tactile sensing family pioneered by the commercially successful GelSight sensor. Such sensors have proven effective for robotic fingertip manipulation and contact sensing. However, because GelSight employs photometric stereo with RGB LEDs, it does not measure absolute depth directly but instead infers it by integrating estimated surface gradients, which can accumulate reconstruction errors; in addition, it becomes increasingly difficult to calibrate as the sensing area grows, and its depth accuracy is challenged on highly reflective or transparent objects. To overcome these drawbacks, we propose a fringe-projection-based contact measurement technique that performs triangulation-based 3-D reconstruction on a coated silicone contact surface, providing dense per-pixel surface geometry and full-field 3-D shape measurement over the contact region. By integrating high-accuracy digital fringe projection into the sensor, our approach simplifies calibration over larger areas and enhances depth precision for complex surfaces. Experimental results, including a direct comparison with a GelSight Mini sensor, a sphere-fitting accuracy evaluation, and an uncertainty analysis, confirm that the proposed method significantly improves the accuracy and stability of structured-light-based 3-D measurements, allowing reliable reconstruction of objects with diverse optical properties.
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