Evolving Cooperative Control on Sparsely Distributed Tasks for UAV Teams Without Global Communication

Abstract

For some tasks, the use of more than one robot may improve the speed, reliability, or flexibility of completion, but many other tasks can be completed only by multiple robots. This paper investigates controller design using multi-objective genetic programming for a multi-robot system to solve a highly constrained problem, where multiple unmanned aerial vehicles (UAVs) must monitor targets spread sparsely throughout a large area. UAVs have a small communication range sensor information is limited and noisy, monitoring a target takes an indefinite amount of time, and evolved controllers must continue to perform well even as the number of UAVs and targets changes. An evolved task selection controller dynamically chooses a target for the UAV based on sensor information and communication. Controllers evolved using several communication schemes were compared in simulation on problem scenarios of varying size, and the results suggest that this approach can evolve effective controllers if communication is limited to the nearest other UAV.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2008
Accession Number
ADA593267

Entities

People

  • Choong K. Oh
  • Gregory J. Barlow
  • Stephen F. Smith

Organizations

  • United States Naval Research Laboratory

Tags

Communities of Interest

  • Air Platforms
  • Autonomy

DTIC Thesaurus Topics

  • Aircrafts
  • Angle Of Arrival
  • Artificial Intelligence
  • Computations
  • Computer Programming
  • Computer Programs
  • Computers
  • Global Communications
  • Military Research
  • Monitoring
  • Multiagent Systems
  • Multiobjective Optimization
  • Robotic Swarms
  • Robotics
  • Robots
  • Unmanned Aerial Vehicles
  • Vehicles

Fields of Study

  • Computer science
  • Engineering

Readers

  • Agent-Based Social Robotics and Mobile-Assisted Learning in Virtual Environments.
  • Computer Vision.
  • Robotics and Automation.

Technology Areas

  • AI & ML
  • AI & ML - Autonomous Systems
  • Autonomy
  • Autonomy - Autonomous System Control
  • Autonomy - UAVs
  • Biotechnology