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Lightweight Decentralized Neural Network-Based Strategies for Multi-Robot Patrolling

Authors :
Ward, James C.
McConville, Ryan
Hunt, Edmund R.
Publication Year :
2024

Abstract

The problem of decentralized multi-robot patrol has previously been approached primarily with hand-designed strategies for minimization of 'idlenes' over the vertices of a graph-structured environment. Here we present two lightweight neural network-based strategies to tackle this problem, and show that they significantly outperform existing strategies in both idleness minimization and against an intelligent intruder model, as well as presenting an examination of robustness to communication failure. Our results also indicate important considerations for future strategy design.

Subjects

Subjects :
Computer Science - Robotics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2412.11916
Document Type :
Working Paper