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Artificial Neural Networks for System Identification and Control

  • Serhat Seker
  • , Tahir Cetin Akinci
  • , Alfredo A. Martinez‑Morales
  • ESIGELEC
  • Université de Djibouti
  • University of California at Riverside
  • Florida Polytechnic University
  • Sustainable Integrated Grid Initiative and the Distributed Energy Resources Laboratory

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

Abstract

In an age where intelligent systems are transforming engineering practice, Artificial Neural Networks for System Identification and Control offers a clear roadmap to mastering artificial intelligence (AI)‑driven modeling and control. From mathematical neuron models to adaptive Artificial Neural Network (ANN)‑based controllers, this book combines theory, algorithms, and hands‑on coding to help readers design and analyze intelligent systems. Rich with visual examples and real‑world case studies, it demonstrates how neural networks outperform traditional control methods in handling nonlinearity, uncertainty, and dynamic system behavior. • Offers a practical and accessible guide to ANN‑based system identification and control • Blends mathematical insight with real engineering applications • Provides Python‑supported examples and visual case studies • Highlights key advances in nonlinear modeling and adaptive control design • Bridges the gap between theory, simulation, and real‑world deployment This book is intended for engineers, researchers, and advanced students seeking to apply artificial intelligence to control theory, robotics, and signal processing and to design smarter, more adaptive engineering systems.

Original languageEnglish
Title of host publicationCoresource 4
PublisherCRC Press
Pages1-100
Number of pages100
ISBN (Electronic)9781003673972
ISBN (Print)9781041049111, 9781041143383
DOIs
Publication statusPublished - 2026

Bibliographical note

Publisher Copyright:
© 2026 Serhat Seker, Tahir Cetin Akinci and Alfredo A. Martinez‑Morales.

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