A Semilinear Parameter-Varying Observer Method for Fabric-Reinforced Soft Robots

Author:

Bui Phuc D.H.,Schultz Joshua A.

Abstract

This paper presents an observer architecture that can estimate a set of configuration space variables, their rates of change and contact forces of a fabric-reinforced inflatable soft robot. We discretized the continuum robot into a sequence of discs connected by inextensible threads; this allows great flexibility when describing the robot’s behavior. At first, the system dynamics is described by a linear parameter-varying (LPV) model that includes a set of subsystems, each of which corresponds to a particular range of chamber pressure. A real-world challenge we confront is that the physical robot prototype exhibits a hysteresis loop whose directions depend on whether the chamber is inflating or deflating. In this paper we transform the hysteresis model to a semilinear model to avoid backward-in-time definitions, making it suitable for observer and controller design. The final model describing the soft robot, including the discretized continuum and hysteresis behavior, is called the semilinear parameter-varying (SPV) model. The semilinear parameter-varying observer architecture includes a set of sub-observers corresponding to the subsystems for each chamber pressure range in the SPV model. The proposed observer is evaluated through simulations and experiments. Simulation results show that the observer can estimate the configuration space variables and their rate of change with no steady-state error. In addition, experimental results display fast convergence of generalized contact force estimates and good tracking of the robot’s configuration relative to ground-truth motion capture data.

Funder

Division of Emerging Frontiers in Research and Innovation

Publisher

Frontiers Media SA

Subject

Artificial Intelligence,Computer Science Applications

Reference22 articles.

1. Real-time Pose Estimation and Obstacle Avoidance for Multi-Segment Continuum Manipulator in Dynamic Environments;Ataka,2016

2. 25th Anniversary Article: A Soft Future: from Robots and Sensor Skin to Energy Harvesters;Bauer;Adv. Mater.,2014

3. States and Contact Forces Estimation for a Fabric-Reinforced Inflatable Soft Robot;Bui,2021

4. Mechanical Programming of Soft Actuators by Varying Fiber Angle;Connolly;Soft Robotics,2015

5. Simultaneous Position and Stiffness Control for an Inflatable Soft Robot;Gillespie,2016

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1. Position Control for a Soft Actuator With High Uncertainty and Hysteresis;2024 IEEE 7th International Conference on Soft Robotics (RoboSoft);2024-04-14

2. Modeling and Simulation of Dynamics in Soft Robotics: a Review of Numerical Approaches;Current Robotics Reports;2023-08-19

3. Inverse Kinematics of a Fabric-reinforced Inflatable Soft Robot;2023 3rd International Conference on Electrical, Computer, Communications and Mechatronics Engineering (ICECCME);2023-07-19

4. Endurance tests for a fabric_reinforced inflatable soft actuator;Frontiers in Materials;2023-05-25

5. Pose Measurement and Contact Training of a Fabric-Reinforced Inflatable Soft Robot;2023 IEEE/SICE International Symposium on System Integration (SII);2023-01-17

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