Multi-Agent Search under Uncertainty
eBook - ePub

Multi-Agent Search under Uncertainty

Reactive and Deep Q-Learning Methods

  1. 107 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Multi-Agent Search under Uncertainty

Reactive and Deep Q-Learning Methods

About this book

Plan optimal multi-robot search paths despite imperfect sensor information

When multiple robots must locate targets in presence of false positive and false negative detection errors, path planning becomes extraordinarily complex. Multi-Agent Search under Uncertainty addresses this challenge directly. Written by researchers with combined expertise spanning defense systems, applied mathematics, and machine learning, this book delivers both theoretical foundations in search and screening theory and ready-to-use algorithms for practical implementation.

The book covers cooperative search and navigation methods for autonomous mobile agents operating with incomplete or noisy information. Readers learn how Deep Q-Learning enables robots to develop complex behaviors through trial-and-error interactions rather than pre-programmed instructions. Applications span search and rescue operations, military surveillance, environmental monitoring, and security systems. An accompanying website provides Python code for simulation practice.

Key topics include:

  • Value-based Q-Learning methods where robots learn expected rewards for specific actions in given states under sensor uncertainty conditions
  • Multi-agent reinforcement learning approaches for swarm robotics where multiple robots learn cooperatively to accomplish collaborative search tasks
  • Deep reinforcement learning using neural networks to process high-dimensional sensory inputs and execute complex search and tracking behaviors
  • Algorithms for finding and tracking both stationary and moving targets while minimizing detection time despite false negative and positive readings
  • Theoretical contributions to search and screening theory alongside practical algorithms validated in autonomous robotic systems development

Designed for graduate students and researchers in robotics and reinforcement learning, this book bridges advanced theory with practical application. Professional developers building autonomous systems will find algorithms tested in real-world robotic development.

Information

Publisher
Wiley
Year
2026
Print ISBN
9781394418459
Edition
1
eBook ISBN
9781394418466

Table of contents

  1. Cover
  2. Table of Contents
  3. Title Page
  4. Copyright
  5. Dedication
  6. Preface
  7. About the Companion Website
  8. 1 Introduction
  9. 2 Background
  10. 3 Problem Formulation and Basic Search Procedure
  11. 4 Reactive Detection Algorithms
  12. 5 Search with Learning
  13. 6 Search with Deep Q‐Learning: Single Agent
  14. 7 Search with Deep Q‐learning: Multiple Agents
  15. 8 Conclusions
  16. References
  17. Index
  18. End User License Agreement

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Yes, you can access Multi-Agent Search under Uncertainty by Barouch Matzliach,Evgeny Kagan,Irad Ben-Gal in PDF and/or ePUB format, as well as other popular books in Technology & Engineering & Programming Algorithms. We have over 1.5 million books available in our catalogue for you to explore.