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Fuzzy Algorithms for Control gives an overview of the research
results of a number of European research groups that are active and
play a leading role in the field of fuzzy modeling and control. It
contains 12 chapters divided into three parts. Chapters in the
first part address the position of fuzzy systems in control
engineering and in the AI community. State-of-the-art surveys on
fuzzy modeling and control are presented along with a critical
assessment of the role of these methodologists in control
engineering. The second part is concerned with several analysis and
design issues in fuzzy control systems. The analytical issues
addressed include the algebraic representation of fuzzy models of
different types, their approximation properties, and stability
analysis of fuzzy control systems. Several design aspects are
addressed, including performance specification for control systems
in a fuzzy decision-making framework and complexity reduction in
multivariable fuzzy systems. In the third part of the book, a
number of applications of fuzzy control are presented. It is shown
that fuzzy control in combination with other techniques such as
fuzzy data analysis is an effective approach to the control of
modern processes which present many challenges for the design of
control systems. One has to cope with problems such as process
nonlinearity, time-varying characteristics for incomplete process
knowledge. Examples of real-world industrial applications presented
in this book are a blast furnace, a lime kiln and a solar plant.
Other examples of challenging problems in which fuzzy logic plays
an important role and which are included in this book are mobile
robotics and aircraft control. The aim of this book is to address
both theoretical and practical subjects in a balanced way. It will
therefore be useful for readers from the academic world and also
from industry who want to apply fuzzy control in practice.
The field of artificial intelligence (AI) has expanded enormously
during the last years, and solid theoretical and application
results are now available. Researchers and practitioners are
building AI-based systems that face real-world and industrial
problems. This text provides a balanced state-of-the-art
presentation of the involvement of AI in the design and operation
of important industrial systems with built-in intelligence. Topics
included are: integration of qualitative and quantitative models,
timing problems, intelligent simulation and control,
multiresolutional architectures for autonomous systems, DAI
systems, artificial neural networks in modelling and control,
system diagnostics, industrial robotic systems and cells, man-robot
systems, flexible manufacturing systems and knowledge-based
scheduling systems. Readers should be able to save considerable
time in searching the scattered literature in the field, and should
find here a set of how-to-do issues and results which should
improve their skills in analyzing and designing AI-based systems.
This book is concerned with Artificial Intelligence (AI) concepts
and techniques as applied to industrial decision making, control
and automation problems. The field of AI has been expanded
enormously during the last years due to that solid theoretical and
application results have accumulated. During the first stage of AI
development most workers in the field were content with
illustrations showing ideas at work on simple problems. Later, as
the field matured, emphasis was turned to demonstrations that
showed the capability of AI techniques to handle problems of
practical value. Now, we arrived at the stage where researchers and
practitioners are actually building AI systems that face real-world
and industrial problems. This volume provides a set of twenty four
well-selected contributions that deal with the application of AI to
such real-life and industrial problems. These contributions are
grouped and presented in five parts as follows: Part 1: General
Issues Part 2: Intelligent Systems Part 3: Neural Networks in
Modelling, Control and Scheduling Part 4: System Diagnostics Part
5: Industrial Robotic, Manufacturing and Organizational Systems
Part 1 involves four chapters providing background material and
dealing with general issues such as the conceptual integration of
qualitative and quantitative models, the treatment of timing
problems at system integration, and the investigation of correct
reasoning in interactive man-robot systems.
Fuzzy Algorithms for Control gives an overview of the research
results of a number of European research groups that are active and
play a leading role in the field of fuzzy modeling and control. It
contains 12 chapters divided into three parts. Chapters in the
first part address the position of fuzzy systems in control
engineering and in the AI community. State-of-the-art surveys on
fuzzy modeling and control are presented along with a critical
assessment of the role of these methodologists in control
engineering. The second part is concerned with several analysis and
design issues in fuzzy control systems. The analytical issues
addressed include the algebraic representation of fuzzy models of
different types, their approximation properties, and stability
analysis of fuzzy control systems. Several design aspects are
addressed, including performance specification for control systems
in a fuzzy decision-making framework and complexity reduction in
multivariable fuzzy systems. In the third part of the book, a
number of applications of fuzzy control are presented. It is shown
that fuzzy control in combination with other techniques such as
fuzzy data analysis is an effective approach to the control of
modern processes which present many challenges for the design of
control systems. One has to cope with problems such as process
nonlinearity, time-varying characteristics for incomplete process
knowledge. Examples of real-world industrial applications presented
in this book are a blast furnace, a lime kiln and a solar plant.
Other examples of challenging problems in which fuzzy logic plays
an important role and which are included in this book are mobile
robotics and aircraft control. The aim of this book is to address
both theoretical and practical subjects in a balanced way. It will
therefore be useful for readers from the academic world and also
from industry who want to apply fuzzy control in practice.
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