Fast Feedback Control over Multi-hop Wireless Networks with Mode Changes and Stability Guarantees

Author:

Baumann Dominik1ORCID,Mager Fabian2,Jacob Romain3,Thiele Lothar3,Zimmerling Marco2,Trimpe Sebastian4

Affiliation:

1. Max Planck Institute for Intelligent Systems, Tübingen, Germany

2. TU Dresden, Dresden, Germany

3. ETH Zurich, Zurich, Switzerland

4. Max Planck Institute for Intelligent Systems, Germany

Abstract

Closing feedback loops fast and over long distances is key to emerging cyber-physical applications; for example, robot motion control and swarm coordination require update intervals of tens of milliseconds. Low-power wireless communication technology is preferred for its low cost, small form factor, and flexibility, especially if the devices support multi-hop communication. Thus far, however, feedback control over multi-hop low-power wireless networks has only been demonstrated for update intervals on the order of seconds. To fill this gap, this article presents a wireless embedded system that supports dynamic mode changes and tames imperfections impairing control performance (e.g., jitter and message loss), and a control design that exploits the essential properties of this system to provably guarantee closed-loop stability for physical processes with linear time-invariant dynamics in the presence of mode changes. Using experiments on a cyber-physical testbed with 20 wireless devices and multiple cart-pole systems, we are the first to demonstrate and evaluate feedback control and coordination with mode changes over multi-hop networks for update intervals of 20 to 50 milliseconds.

Funder

Emmy Noether project NextIoT

Max Planck Society

SPP 1914

Cyber Valley Initiative

German Research Foundation (DFG) within the Cluster of Excellence CFAED

Publisher

Association for Computing Machinery (ACM)

Subject

Artificial Intelligence,Control and Optimization,Computer Networks and Communications,Hardware and Architecture,Human-Computer Interaction

Reference71 articles.

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2. Future research challenges in wireless sensor and actuator networks targeting industrial automation

3. System architectures, protocols and algorithms for aperiodic wireless control systems;Araújo José;IEEE Trans. Industr. Inform.,2014

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