Optimization and Evaluation of a Multi Robot Surface Inspection Task Through Particle Swarm Optimization

Darren Chiu*, Radhika Nagpal, Bahar Haghighat

*Corresponding author voor dit werk

OnderzoeksoutputAcademicpeer review

1 Citaat (Scopus)

Samenvatting

Robot swarms can be tasked with a variety of automated sensing and inspection applications in aerial, aquatic, and surface environments. In this paper, we study a simplified two-outcome surface inspection task. We task a group of robots to inspect and collectively classify a 2D surface section based on a binary pattern projected on the surface. We use a decentralized Bayesian decision-making algorithm and deploy a swarm of 3-cm sized wheeled robots to inspect a randomized black and white tiled surface section of size 1m×1m in simulation. We first describe the model parameters that characterize our simulated environment, the robot swarm, and the inspection algorithm. We then employ a noise-resistant heuristic optimization scheme based on the Particle Swarm Optimization (PSO) using a fitness evaluation that combines the swarm's classification decision accuracy and decision time. We use our fitness measure definition to asses the optimized parameters through 100 randomized simulations that vary surface pattern and initial robot poses. The optimized algorithm parameters show up to 55% improvement in median of fitness evaluations against an empirically chosen parameter set.

Originele taal-2English
Titel2024 IEEE International Conference on Robotics and Automation, ICRA 2024
UitgeverijIEEE
Pagina's8996-9002
Aantal pagina's7
ISBN van elektronische versie979-8-3503-8457-4
ISBN van geprinte versie979-8-3503-8458-1
DOI's
StatusPublished - 2024
Evenement2024 IEEE International Conference on Robotics and Automation, ICRA 2024 - Yokohama, Japan
Duur: 13-mei-202417-mei-2024

Publicatie series

NaamProceedings - IEEE International Conference on Robotics and Automation
ISSN van geprinte versie1050-4729

Conference

Conference2024 IEEE International Conference on Robotics and Automation, ICRA 2024
Land/RegioJapan
StadYokohama
Periode13/05/202417/05/2024

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