English

Manipulation via Membranes: High-Resolution and Highly Deformable Tactile Sensing and Control

Robotics 2022-09-28 v1

Abstract

Collocated tactile sensing is a fundamental enabling technology for dexterous manipulation. However, deformable sensors introduce complex dynamics between the robot, grasped object, and environment that must be considered for fine manipulation. Here, we propose a method to learn soft tactile sensor membrane dynamics that accounts for sensor deformations caused by the physical interaction between the grasped object and environment. Our method combines the perceived 3D geometry of the membrane with proprioceptive reaction wrenches to predict future deformations conditioned on robot action. Grasped object poses are recovered from membrane geometry and reaction wrenches, decoupling interaction dynamics from the tactile observation model. We benchmark our approach on two real-world contact-rich tasks: drawing with a grasped marker and in-hand pivoting. Our results suggest that explicitly modeling membrane dynamics achieves better task performance and generalization to unseen objects than baselines.

Keywords

Cite

@article{arxiv.2209.13432,
  title  = {Manipulation via Membranes: High-Resolution and Highly Deformable Tactile Sensing and Control},
  author = {Miquel Oller and Mireia Planas and Dmitry Berenson and Nima Fazeli},
  journal= {arXiv preprint arXiv:2209.13432},
  year   = {2022}
}

Comments

6th Conference on Robotic Learning (CoRL 2022), Auckland, New Zealand. 8 pages + references + appendix