Sensorless Four-Channel Control Architecture Using Inverse Dynamics Modeling for Human-Scale Bilateral Teleoperation
This paper proposes a sensorless four-channel architecture for teleoperation using inverse dynamics modeling, outperforming conventional methods in human-scale manipulation tasks.
Proposes a sensorless four-channel architecture using inverse dynamics modeling for teleoperation, improving performance and reducing cost compared to conventional methods.
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Applications
- →Teleoperation in industrial settings
- →Telepresence and remote manipulation
To understand this paper, make sure you know these concepts first:
- Understanding of teleoperation principlesfind papers →
- Basic knowledge of robotics and control systemsfind papers →
Abstract
More Like ThisThe four-channel teleoperation architecture is a well-established framework for achieving transparency in bilateral systems. However, its performance in human-scale teleoperation is limited by high inertia, modeling challenges, and reliance on noisy and costly force/torque sensors. This paper introduces a sensorless four-channel architecture based on inverse dynamics modeling. The controller is implemented and validated on a customized WAM bilateral teleoperation setup. Experiments demonstrate that the proposed approach outperforms conventional two- and four-channel schemes as well as transparency-enhancement methods, improving position and force tracking, reducing operator effort, and increasing maximum transmittable impedance without external sensors. A door-opening case study involving sustained whole-body contact along the manipulator further demonstrates the effectiveness of the method in realistic human-scale manipulation tasks.