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Design and Applications

Book's cover
The cover of “Real-time Iterative Learning Control” - Open Library.
Real-time Iterative Learning Control - cover - The Open Library
Book's cover - The Open Library
Real-time Iterative Learning Control - cover - Google Books
Book's cover - Google Books

"Real-time Iterative Learning Control" was published by Springer in Dec 10, 2010, the book is classified in Technology & Engineering genre, it has 212 pages and the language of the book is English.


“Real-time Iterative Learning Control” Metadata:

  • Title: ➤  Real-time Iterative Learning Control
  • Author:
  • Language: English
  • Number of Pages: 212
  • Is Family Friendly: Yes - No Mature Content
  • Publisher: Springer
  • Publish Date:
  • Genres: Technology & Engineering

“Real-time Iterative Learning Control” Subjects and Themes:

Edition Specifications:

  • Format: paperback

Edition Identifiers:

AI-generated Review of “Real-time Iterative Learning Control”:


Snippets and Summary:

The book gives a systematic introduction to real-time ILC design and source of illustrative case studies for ILC problem solving; the fundamental concepts, schematics, configurations and generic guidelines for ILC design and implementation ...

"Real-time Iterative Learning Control" Description:

Google Books:

Real-time Iterative Learning Control demonstrates how the latest advances in iterative learning control (ILC) can be applied to a number of plants widely encountered in practice. The book gives a systematic introduction to real-time ILC design and source of illustrative case studies for ILC problem solving; the fundamental concepts, schematics, configurations and generic guidelines for ILC design and implementation are enhanced by a well-selected group of representative, simple and easy-to-learn example applications. Key issues in ILC design and implementation in linear and nonlinear plants pervading mechatronics and batch processes are addressed, in particular: ILC design in the continuous- and discrete-time domains; design in the frequency and time domains; design with problem-specific performance objectives including robustness and optimality; design in a modular approach by integration with other control techniques; and design by means of classical tools based on Bode plots and state space.

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