Formal Methods for Multi-Agent Feedback Control Systems

Höfundar: Lars Lindemann; Dimos V. Dimarogonas (Útgáfa: 0)
Formal Methods for Multi-Agent Feedback Control Systems

Kaup valmöguleikar

An introduction to formal methods for feedback control of multi-agent systems with safety and performance guarantees. Multi-agent control systems can accomplish tasks that single-agent systems cannot address, such as aerial surveillance of large areas by a group of drones. In Formal Methods for Multi-Agent Feedback Control Systems, Lars Lindemann and Dimos Dimarogonas provide an accessible introduction to formal methods for feedback control of multi-agent systems.

Their book is the first to bridge the gap between formal methods and feedback control for the scalable design of cyber-physical systems. The material covered is intended for scientists, engineers, and students, and no background in formal methods or control theory is required. The authors also highlight future research directions for those working at the intersection of formal methods and control.

In control theory, the goal is to design feedback control laws for dynamical systems that achieve control objectives such as stability or forward invariance of sets. Formal methods, on the other hand, provide verification and design techniques for more complex system specifications using temporal logics. However, their high computational cost limits scaling beyond a small number of agents. Besides scalability, another central challenge is to achieve robustness in the system design.

Nánar um bókina

Útgefandi
Random House Publishing Services
ISBN
9780262382809
Print ISBN
9780262049719
Format
ePub
Útgáfa
0
Höfundar
Lars Lindemann; Dimos V. Dimarogonas
Tungumál
English
Útgefið
2025-04-29
Prent takmörkun á líftíma
100
Prent takmörkun
2
Afritunar takmörkun
2

Kaflar

  • Series Page
  • Title Page
  • Copyright
  • Epigraphs
  • Contents
  • List of Figures
  • Foreword
  • Preface
  • I: Foundations
  • 1. Introduction
  • 1.1. Multi-Agent Control Systems
  • 1.2. Formal Methods for Multi-Agent Control Systems
  • 1.3. Outlook
  • 1.4. Notes and References
  • 1.5. Notation
  • 2. Multi-Agent Systems and Control Theory
  • 2.1. Dynamical Systems
  • 2.2. Selected Topics from Nonlinear Control Theory
  • 2.3. Multi-Agent Control Systems
  • 2.4. Notes and References
  • 3. Formal Methods and Spatiotemporal Logics
  • 3.1. Formal Methods
  • 3.2. Spatiotemporal Logics
  • 3.3. Timed Automata Theory
  • 3.4. Notes and References
  • II: Multi-Agent Control Barrier Functions for Spatiotemporal Constraints
  • 4. Centralized Time-Varying Control Barrier Functions
  • 4.1. Time-Varying Control Barrier Functions
  • 4.2. Encoding Signal Temporal Logic
  • 4.3. Control Laws Based on Time-Varying Control Barrier Functions
  • 4.4. Constructing Valid Time-Varying Control Barrier Functions
  • 4.5. Unicycle Models and Unknown Dynamics
  • 4.6. Notes and References
  • 4.7. Additional Proofs
  • 5. Decentralized Time-Varying Control Barrier Functions
  • 5.1. Decentralized Collaborative Control
  • 5.2. Decentralized Control under Conflicting Local Specifications
  • 5.3. Notes and References
  • 5.4. Additional Proofs
  • III: Multi-Agent Funnel Control for Spatiotemporal Constraints
  • 6. Centralized Funnel Control
  • 6.1. Encoding Signal Temporal Logic
  • 6.2. Control Laws Based on a Single Funnel
  • 6.3. Control Laws Based on Multiple Funnels
  • 6.4. Notes and References
  • 6.5. Additional Proofs
  • 7. Decentralized Funnel Control
  • 7.1. Decentralized Collaborative Funnel Control
  • 7.2. Decentralized Funnel Control under Conflicting Local Specifications
  • 7.3. Experiments and Practical Considerations
  • 7.4. Notes and References
  • IV: Planning under Spatiotemporal Logic Specifications
  • 8. Timed Automata-Based Planning
  • 8.1. Encoding Signal Interval Temporal Logic
  • 8.2. Timed Abstraction of Dynamical Control Systems
  • 8.3. Dynamically Feasible Plan Synthesis
  • 8.4. Notes and References
  • V: Moving Forward
  • 9. Outlook and Open Problems
  • Bibliography
  • Index
  • Series List