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Practical AI Control Methods

Neural, Fuzzy, and Reinforcement Learning Approaches

Medium: Buch
ISBN: 978-1-041-37047-5
Verlag: Taylor & Francis Ltd
Erscheinungstermin: 23.11.2026
vorbestellbar, Erscheinungstermin ca. November 2026

This comprehensive guide bridges classical control theory and modern AI-driven control systems, demonstrating how neural networks, fuzzy logic, and reinforcement learning enable adaptive controllers that learn from data and handle complex nonlinearities. Moving beyond theoretical foundations, the book emphasizes practical implementation through detailed Python and Simulink examples, covering neural network architectures, deep reinforcement learning, transformer-based control, and hybrid fuzzy-AI systems.

Designed for graduate students, advanced undergraduates, and practicing engineers in control systems and AI, the text assumes familiarity with classical control, Python programming, and machine learning fundamentals. Readers gain hands-on experience building intelligent controllers through project-driven tutorials that address real-world deployment challenges, validation strategies, and the practical realities of learning-based control, including the absence of classical stability guarantees and the need for empirical validation.

With coverage spanning system identification, vision-based perception, model predictive control, and deployment on embedded platforms, this book serves as both a practical manual and technical reference for designing, implementing, and deploying AI-enabled control architectures.

- Emphasizes hands-on controller construction, data preparation, training workflows, and simulation setup rather than pure theory.

- Presents AI-control algorithms as implementation tutorials using Python and Simulink examples.

- Includes complete project walkthroughs for neural network controllers, reinforcement learning navigation, and hybrid fuzzy-AI systems.


Produkteigenschaften


  • Artikelnummer: 9781041370475
  • Medium: Buch
  • ISBN: 978-1-041-37047-5
  • Verlag: Taylor & Francis Ltd
  • Erscheinungstermin: 23.11.2026
  • Sprache(n): Englisch
  • Auflage: 1. Auflage 2026
  • Produktform: Gebunden
  • Seiten: 480
  • Format (B x H): 156 x 234 mm
  • Ausgabetyp: Kein, Unbekannt
Autoren/Hrsg.

Autoren

Preface AcknowledgmentsAbout the Author1 Introduction to AI Control2 AI Techniques for Control3 Neural Computation and Optimization 4 Neural Network Control5 Reinforcement Learning for Control6 Fuzzy Logic for Control7 System Identification 8 CNN 9 Simulation and Deployment Tools10 Advanced AI Control11 Transformers for Control and ID12 Hybrid Fuzzy-AI Control13 Best Practices14 Conclusion and Future Directions 433AppendixIndex