Mimetic Communication Model with Compliant Physical Contact in Human—Humanoid Interaction

Author:

Lee Dongheui1,Ott Christian2,Nakamura Yoshihiko3

Affiliation:

1. Department of Electrical Engineering and Information Technology, Technical University of Munich, Munich, Germany

2. Institute of Robotics and Mechatronics, German Aerospace Center (DLR), Wessling, Germany,

3. Department of Mechano-Informatics, The University of Tokyo, Tokyo, Japan

Abstract

In this paper we aim at extending imitation learning to physical human—robot interaction (pHRI) including contact transitions (from non-contact to contact and vice versa). For interactive learning of pHRI, the paper raises four key issues: (1) motion imitation, (2) understanding motion primitives, (3) understanding interaction primitives, and (4) physical contact establishment. These issues are solved by (1) marker control, (2) mimesis model, (3) mimetic communication model, and (4) real-time motion reshaping and impedance control, respectively. The simple human motion imitation is realized by a direct marker control method in which the robot is virtually connected to the markers attached to the human via virtual springs. Learning procedures are based on ‘‘imitation of a human’’ and ‘‘active involvement’’ of the robot during the learning. The ‘‘imitation of a human’’ scheme provides efficient learning. The ‘‘active involvement’’ scheme supports incremental learning and it also enables to acquire sensory information for physical contacts. By modifying the mimetic communication model proposed by Nakamura et al., we achieve communication in physical domain as well as the symbolic domain. The communication in the symbolic domain is realized through the concept of motion primitives and interaction primitives. In the physical domain, the trajectory of the motion primitive is reshaped in accordance with the human’s motions in real-time. Moreover, for performing compliant contact motion, an appropriate impedance controller is integrated into the setting. All of the presented concepts are applied to ‘‘high five’’-like interaction tasks and evaluated in experiments with a human-size humanoid robot.

Publisher

SAGE Publications

Subject

Applied Mathematics,Artificial Intelligence,Electrical and Electronic Engineering,Mechanical Engineering,Modelling and Simulation,Software

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1. Robot Interaction Behavior Generation based on Social Motion Forecasting for Human-Robot Interaction;2024 IEEE International Conference on Robotics and Automation (ICRA);2024-05-13

2. ImitationNet: Unsupervised Human-to-Robot Motion Retargeting via Shared Latent Space;2023 IEEE-RAS 22nd International Conference on Humanoid Robots (Humanoids);2023-12-12

3. Stiffness modeling and distribution of a modular cable-driven human-like robotic arm;Mechanism and Machine Theory;2023-02

4. Learning Skills from Demonstrations: A Trend from Motion Primitives to Experience Abstraction;IEEE Transactions on Cognitive and Developmental Systems;2023

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