Fuzzy Control And Identification

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Fuzzy Control and Identification

Author : John H. Lilly
Publisher : John Wiley & Sons
Page : 199 pages
File Size : 41,8 Mb
Release : 2011-03-10
Category : Technology & Engineering
ISBN : 9781118097816

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Fuzzy Control and Identification by John H. Lilly Pdf

This book gives an introduction to basic fuzzy logic and Mamdani and Takagi-Sugeno fuzzy systems. The text shows how these can be used to control complex nonlinear engineering systems, while also also suggesting several approaches to modeling of complex engineering systems with unknown models. Finally, fuzzy modeling and control methods are combined in the book, to create adaptive fuzzy controllers, ending with an example of an obstacle-avoidance controller for an autonomous vehicle using modus ponendo tollens logic.

Fuzzy Logic, Identification and Predictive Control

Author : Jairo Jose Espinosa Oviedo,Joos P.L. Vandewalle,Vincent Wertz
Publisher : Springer Science & Business Media
Page : 274 pages
File Size : 43,7 Mb
Release : 2007-01-04
Category : Technology & Engineering
ISBN : 9781846280870

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Fuzzy Logic, Identification and Predictive Control by Jairo Jose Espinosa Oviedo,Joos P.L. Vandewalle,Vincent Wertz Pdf

Modern industrial processes and systems require adaptable advanced control protocols able to deal with circumstances demanding "judgement” rather than simple "yes/no”, "on/off” responses: circumstances where a linguistic description is often more relevant than a cut-and-dried numerical one. The ability of fuzzy systems to handle numeric and linguistic information within a single framework renders them efficacious for this purpose. Fuzzy Logic, Identification and Predictive Control first shows you how to construct static and dynamic fuzzy models using the numerical data from a variety of real industrial systems and simulations. The second part exploits such models to design control systems employing techniques like data mining. This monograph presents a combination of fuzzy control theory and industrial serviceability that will make a telling contribution to your research whether in the academic or industrial sphere and also serves as a fine roundup of the fuzzy control area for the graduate student.

Fuzzy System Identification and Adaptive Control

Author : Ruiyun Qi,Gang Tao,Bin Jiang
Publisher : Unknown
Page : 282 pages
File Size : 55,9 Mb
Release : 2019
Category : Artificial intelligence
ISBN : 3030198839

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Fuzzy System Identification and Adaptive Control by Ruiyun Qi,Gang Tao,Bin Jiang Pdf

This book provides readers with a systematic and unified framework for identification and adaptive control of Takagi-Sugeno (T-S) fuzzy systems. Its design techniques help readers applying these powerful tools to solve challenging nonlinear control problems. The book embodies a systematic study of fuzzy system identification and control problems, using T-S fuzzy system tools for both function approximation and feedback control of nonlinear systems. Alongside this framework, the book also: introduces basic concepts of fuzzy sets, logic and inference system; discusses important properties of T-S fuzzy systems; develops offline and online identification algorithms for T-S fuzzy systems; investigates the various controller structures and corresponding design conditions for adaptive control of continuous-time T-S fuzzy systems; develops adaptive control algorithms for discrete-time input-output form T-S fuzzy systems with much relaxed design conditions, and discrete-time state-space T-S fuzzy systems; and designs stable parameter-adaptation algorithms for both linearly and nonlinearly parameterized T-S fuzzy systems. The authors address adaptive fault compensation problems for T-S fuzzy systems subject to actuator faults. They cover a broad spectrum of related technical topics and to develop a substantial set of adaptive nonlinear system control tools. Fuzzy System Identification and Adaptive Control helps engineers in the mechanical, electrical and aerospace fields, to solve complex control design problems. The book can be used as a reference for researchers and academics in nonlinear, intelligent, adaptive and fault-tolerant control.

Fuzzy Model Identification for Control

Author : Janos Abonyi
Publisher : Springer Science & Business Media
Page : 279 pages
File Size : 48,5 Mb
Release : 2012-12-06
Category : Technology & Engineering
ISBN : 9781461200277

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Fuzzy Model Identification for Control by Janos Abonyi Pdf

This book presents new approaches to constructing fuzzy models for model-based control. Simulated examples and real-world applications from chemical and process engineering illustrate the main methods and techniques. Supporting MATLAB and Simulink files create a computational platform for exploration of the concepts and algorithms.

Fuzzy Model Identification

Author : Hans Hellendoorn,Dimiter Driankov
Publisher : Springer Science & Business Media
Page : 334 pages
File Size : 42,5 Mb
Release : 2012-12-06
Category : Computers
ISBN : 9783642607677

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Fuzzy Model Identification by Hans Hellendoorn,Dimiter Driankov Pdf

During the past few years two principally different approaches to the design of fuzzy controllers have emerged: heuristics-based design and model-based design. The main motivation for the heuristics-based design is given by the fact that many industrial processes are still controlled in one of the following two ways: - The process is controlled manually by an experienced operator. - The process is controlled by an automatic control system which needs manual, on-line 'trimming' of its parameters by an experienced operator. In both cases it is enough to translate in terms of a set of fuzzy if-then rules the operator's manual control algorithm or manual on-line 'trimming' strategy in order to obtain an equally good, or even better, wholly automatic fuzzy control system. This implies that the design of a fuzzy controller can only be done after a manual control algorithm or trimming strategy exists. It is admitted in the literature on fuzzy control that the heuristics-based approach to the design of fuzzy controllers is very difficult to apply to multiple-inputjmultiple-output control problems which represent the largest part of challenging industrial process control applications. Furthermore, the heuristics-based design lacks systematic and formally verifiable tuning tech niques. Also, studies of the stability, performance, and robustness of a closed loop system incorporating a heuristics-based fuzzy controller can only be done via extensive simulations.

Fuzzy Logic, Identification and Predictive Control

Author : Jairo Jose Espinosa Oviedo,Joos P.L. Vandewalle,Vincent Wertz
Publisher : Springer
Page : 264 pages
File Size : 47,5 Mb
Release : 2009-10-12
Category : Technology & Engineering
ISBN : 1848007752

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Fuzzy Logic, Identification and Predictive Control by Jairo Jose Espinosa Oviedo,Joos P.L. Vandewalle,Vincent Wertz Pdf

Modern industrial processes and systems require adaptable advanced control protocols able to deal with circumstances demanding "judgement” rather than simple "yes/no”, "on/off” responses: circumstances where a linguistic description is often more relevant than a cut-and-dried numerical one. The ability of fuzzy systems to handle numeric and linguistic information within a single framework renders them efficacious for this purpose. Fuzzy Logic, Identification and Predictive Control first shows you how to construct static and dynamic fuzzy models using the numerical data from a variety of real industrial systems and simulations. The second part exploits such models to design control systems employing techniques like data mining. This monograph presents a combination of fuzzy control theory and industrial serviceability that will make a telling contribution to your research whether in the academic or industrial sphere and also serves as a fine roundup of the fuzzy control area for the graduate student.

Fuzzy Control and Fuzzy Systems

Author : Witold Pedrycz
Publisher : John Wiley & Sons
Page : 282 pages
File Size : 55,6 Mb
Release : 1989-10-27
Category : Science
ISBN : UOM:39015017903124

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Fuzzy Control and Fuzzy Systems by Witold Pedrycz Pdf

Presents the state of the art in fuzzy control and fuzzy systems, with emphasis on the role of fuzzy sets in control engineering. Provides background to fuzzy sets, the concept of fuzzy control, and fuzzy controllers, with examples of applications. Describes properties and extensions of the fuzzy controller; description, identification, and validation of models; and determination of control algorithms. Also considers the decision process in terms of fuzzy relational equations and solution of problems via fuzzy numbers.

Fuzzy Control

Author : Kevin M. Passino,Stephen Yurkovich
Publisher : Prentice Hall
Page : 506 pages
File Size : 41,9 Mb
Release : 1998
Category : Computers
ISBN : UOM:39015040569165

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Fuzzy Control by Kevin M. Passino,Stephen Yurkovich Pdf

Introduction; Fuzzy control: the basics; Case studies in design and implementation; nonlinear analysis; Fuzzy identification and estimation; Adaptive fuzzy control; Fuzzy supervisory control; Perspectives on fuzzy control.

Analysis and Synthesis of Fuzzy Control Systems

Author : Gang Feng
Publisher : CRC Press
Page : 299 pages
File Size : 55,9 Mb
Release : 2018-09-03
Category : Technology & Engineering
ISBN : 9781420092653

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Analysis and Synthesis of Fuzzy Control Systems by Gang Feng Pdf

Fuzzy logic control (FLC) has proven to be a popular control methodology for many complex systems in industry, and is often used with great success as an alternative to conventional control techniques. However, because it is fundamentally model free, conventional FLC suffers from a lack of tools for systematic stability analysis and controller design. To address this problem, many model-based fuzzy control approaches have been developed, with the fuzzy dynamic model or the Takagi and Sugeno (T–S) fuzzy model-based approaches receiving the greatest attention. Analysis and Synthesis of Fuzzy Control Systems: A Model-Based Approach offers a unique reference devoted to the systematic analysis and synthesis of model-based fuzzy control systems. After giving a brief review of the varieties of FLC, including the T–S fuzzy model-based control, it fully explains the fundamental concepts of fuzzy sets, fuzzy logic, and fuzzy systems. This enables the book to be self-contained and provides a basis for later chapters, which cover: T–S fuzzy modeling and identification via nonlinear models or data Stability analysis of T–S fuzzy systems Stabilization controller synthesis as well as robust H∞ and observer and output feedback controller synthesis Robust controller synthesis of uncertain T–S fuzzy systems Time-delay T–S fuzzy systems Fuzzy model predictive control Robust fuzzy filtering Adaptive control of T–S fuzzy systems A reference for scientists and engineers in systems and control, the book also serves the needs of graduate students exploring fuzzy logic control. It readily demonstrates that conventional control technology and fuzzy logic control can be elegantly combined and further developed so that disadvantages of conventional FLC can be avoided and the horizon of conventional control technology greatly extended. Many chapters feature application simulation examples and practical numerical examples based on MATLAB®.

Adaptive Fuzzy Systems and Control

Author : Li-Xin Wang
Publisher : Prentice Hall
Page : 262 pages
File Size : 42,7 Mb
Release : 1994
Category : Computers
ISBN : STANFORD:36105003435844

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Adaptive Fuzzy Systems and Control by Li-Xin Wang Pdf

This volume develops a variety of adaptive fuzzy systems and applies them to a variety of engineering problems. It summarizes the state-of-the-art methods for automatic tuning of the parameters and structures of fuzzy logic systems.

System Identification and Adaptive Control

Author : Yiannis Boutalis,Dimitrios Theodoridis,Theodore Kottas,Manolis A. Christodoulou
Publisher : Springer Science & Business
Page : 316 pages
File Size : 53,9 Mb
Release : 2014-04-23
Category : Technology & Engineering
ISBN : 9783319063645

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System Identification and Adaptive Control by Yiannis Boutalis,Dimitrios Theodoridis,Theodore Kottas,Manolis A. Christodoulou Pdf

Presenting current trends in the development and applications of intelligent systems in engineering, this monograph focuses on recent research results in system identification and control. The recurrent neurofuzzy and the fuzzy cognitive network (FCN) models are presented. Both models are suitable for partially-known or unknown complex time-varying systems. Neurofuzzy Adaptive Control contains rigorous proofs of its statements which result in concrete conclusions for the selection of the design parameters of the algorithms presented. The neurofuzzy model combines concepts from fuzzy systems and recurrent high-order neural networks to produce powerful system approximations that are used for adaptive control. The FCN model stems from fuzzy cognitive maps and uses the notion of “concepts” and their causal relationships to capture the behavior of complex systems. The book shows how, with the benefit of proper training algorithms, these models are potent system emulators suitable for use in engineering systems. All chapters are supported by illustrative simulation experiments, while separate chapters are devoted to the potential industrial applications of each model including projects in: • contemporary power generation; • process control and • conventional benchmarking problems. Researchers and graduate students working in adaptive estimation and intelligent control will find Neurofuzzy Adaptive Control of interest both for the currency of its models and because it demonstrates their relevance for real systems. The monograph also shows industrial engineers how to test intelligent adaptive control easily using proven theoretical results.

Fuzzy Control and Fuzzy Systems

Author : Witold Pedrycz
Publisher : *Research Studies Press
Page : 376 pages
File Size : 51,9 Mb
Release : 1993-08-17
Category : Computers
ISBN : UOM:39015029874362

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Fuzzy Control and Fuzzy Systems by Witold Pedrycz Pdf

Examines the methodology and algorithms of fuzzy sets considered mainly in the context of control engineering and system modelling and analysis. Special emphasis is focused on the processing of fuzzy information realized with the aid of fuzzy relational structures and their extensions.

Analytical Methods in Fuzzy Modeling and Control

Author : Jacek Kluska
Publisher : Springer Science & Business Media
Page : 272 pages
File Size : 50,9 Mb
Release : 2009-03-10
Category : Computers
ISBN : 9783540899266

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Analytical Methods in Fuzzy Modeling and Control by Jacek Kluska Pdf

This book is focused on mathematical analysis and rigorous design methods for fuzzy control systems based on Takagi-Sugeno fuzzy models, sometimes called Takagi-Sugeno-Kang models. The author presents a rather general analytical theory of exact fuzzy modeling and control of continuous and discrete-time dynamical systems. Main attention is paid to usability of the results for the control and computer engineering community and therefore simple and easy knowledge-bases for linguistic interpretation have been used. The approach is based on the author’s theorems concerning equivalence between widely used Takagi-Sugeno systems and some class of multivariate polynomials. It combines the advantages of fuzzy system theory and classical control theory. Classical control theory can be applied to modeling of dynamical plants and the controllers. They are all equivalent to the set of Takagi-Sugeno type fuzzy rules. The approach combines the best of fuzzy and conventional control theory. It enables linguistic interpretability (also called transparency) of both the plant model and the controller. In the case of linear systems and some class of nonlinear systems, engineers can in many cases directly apply well-known classical tools from the control theory both for analysis, and the design of closed-loop fuzzy control systems. Therefore the main objective of the book is to establish comprehensive and unified analytical foundations for fuzzy modeling using the Takagi-Sugeno rule scheme and their applications for fuzzy control, identification of some class of nonlinear dynamical processes and classification problem solver design.

Fuzzy Modeling and Control

Author : Hung T. Nguyen,Nadipuram R. Prasad
Publisher : CRC Press
Page : 446 pages
File Size : 44,7 Mb
Release : 1999-03-30
Category : Computers
ISBN : 0849328845

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Fuzzy Modeling and Control by Hung T. Nguyen,Nadipuram R. Prasad Pdf

This collection compiles the seminal contributions of Michio Sugeno on fuzzy systems and technologies. Fuzzy Modeling & Control: Selected Works of Sugeno serves as a singular resource that provides a clear, comprehensive treatment of fuzzy control systems. The book comprises two parts fuzzy system identification and modeling systems control Each part outlines the fundamentals of fuzzy logic and covers essential material for understanding the mathematical and modeling details in Sugeno's works. Introductory chapters include extended summaries of each paper or group of papers, suggesting where the theories discussed might be useful in application.

Fuzzy Systems

Author : Hung T. Nguyen,Michio Sugeno
Publisher : Springer Science & Business Media
Page : 532 pages
File Size : 42,5 Mb
Release : 2012-12-06
Category : Mathematics
ISBN : 9781461555056

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Fuzzy Systems by Hung T. Nguyen,Michio Sugeno Pdf

The analysis and control of complex systems have been the main motivation for the emergence of fuzzy set theory since its inception. It is also a major research field where many applications, especially industrial ones, have made fuzzy logic famous. This unique handbook is devoted to an extensive, organized, and up-to-date presentation of fuzzy systems engineering methods. The book includes detailed material and extensive bibliographies, written by leading experts in the field, on topics such as: Use of fuzzy logic in various control systems. Fuzzy rule-based modeling and its universal approximation properties. Learning and tuning techniques for fuzzy models, using neural networks and genetic algorithms. Fuzzy control methods, including issues such as stability analysis and design techniques, as well as the relationship with traditional linear control. Fuzzy sets relation to the study of chaotic systems, and the fuzzy extension of set-valued approaches to systems modeling through the use of differential inclusions. Fuzzy Systems: Modeling and Control is part of The Handbooks of Fuzzy Sets Series. The series provides a complete picture of contemporary fuzzy set theory and its applications. This volume is a key reference for systems engineers and scientists seeking a guide to the vast amount of literature in fuzzy logic modeling and control.