English

Tactile SLAM: Real-time inference of shape and pose from planar pushing

Robotics 2021-03-29 v2

Abstract

Tactile perception is central to robot manipulation in unstructured environments. However, it requires contact, and a mature implementation must infer object models while also accounting for the motion induced by the interaction. In this work, we present a method to estimate both object shape and pose in real-time from a stream of tactile measurements. This is applied towards tactile exploration of an unknown object by planar pushing. We consider this as an online SLAM problem with a nonparametric shape representation. Our formulation of tactile inference alternates between Gaussian process implicit surface regression and pose estimation on a factor graph. Through a combination of local Gaussian processes and fixed-lag smoothing, we infer object shape and pose in real-time. We evaluate our system across different objects in both simulated and real-world planar pushing tasks.

Keywords

Cite

@article{arxiv.2011.07044,
  title  = {Tactile SLAM: Real-time inference of shape and pose from planar pushing},
  author = {Sudharshan Suresh and Maria Bauza and Kuan-Ting Yu and Joshua G. Mangelson and Alberto Rodriguez and Michael Kaess},
  journal= {arXiv preprint arXiv:2011.07044},
  year   = {2021}
}

Comments

Camera-ready version to be presented at the 2021 IEEE International Conference on Robotics and Automation (ICRA 2021). For associated video file, see https://youtu.be/wdyagx5MM40