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ICRA 2023

Tactile Tool Manipulation

Conference Paper Accepted Paper Artificial Intelligence ยท Robotics

Abstract

Humans can effortlessly perform very complex, dexterous manipulation tasks by reacting to sensor observations. In contrast, robots can not perform reactive manipulation and they mostly operate in open-loop while interacting with their environment. Consequently, the current manipulation algorithms either are inefficient in performance or can only work in highly structured environments. In this paper, we present closed-loop control of a complex manipulation task where a robot uses a tool to interact with objects. Manipulation using a tool leads to complex kinematics and contact constraints that need to be satisfied for generating feasible manipulation trajectories. We first present an open-loop controller design using Non-Linear Programming (NLP) that satisfies these constraints. In order to design a closed-loop controller, we present a pose estimator of objects and tools using tactile sensors. Using our tactile estimator, we design a closed-loop controller based on Model Predictive Control (MPC). The proposed algorithm is verified using a 6 DoF manipulator on tasks using a variety of objects and tools. We verify that our closed-loop controller can successfully perform tool manipulation under several unexpected contacts.

Authors

Keywords

  • Automation
  • Tactile sensors
  • Kinematics
  • Programming
  • Prediction algorithms
  • Manipulators
  • 6-DOF
  • Use Of Tools
  • Kinematic
  • Control Design
  • Nonlinear Programming
  • Manipulation Tasks
  • Model Predictive Control
  • Closed-loop Control
  • Tactile Sensor
  • Open-loop Control
  • Dexterous Manipulation
  • Contact Point
  • Friction Coefficient
  • Use Of Control
  • Inequality Constraints
  • External Disturbances
  • Formation Of Contacts
  • Failure Cases
  • Object Shape
  • Contact Force
  • Linear Constraints
  • Object Pose
  • Contact Patch
  • Remarkable Work
  • Force Distribution
  • Trajectory Optimization
  • Contact Model
  • External Objects

Context

Venue
IEEE International Conference on Robotics and Automation
Archive span
1984-2025
Indexed papers
30179
Paper id
817790082575537333
v2026.09.13