Price-based Distributed Optimization in Large-scale Networked Systems

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ISBN 13 :
Total Pages : 147 pages
Book Rating : 4.:/5 (896 download)

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Book Synopsis Price-based Distributed Optimization in Large-scale Networked Systems by : Baisravan HomChaudhuri

Download or read book Price-based Distributed Optimization in Large-scale Networked Systems written by Baisravan HomChaudhuri and published by . This book was released on 2013 with total page 147 pages. Available in PDF, EPUB and Kindle. Book excerpt: This work is intended towards the development of distributed optimization methods for large-scale networked systems. The advancement in technological fields such as networking, communication and computing has facilitated the development of networks which are massively large-scale in nature. One of the important challenges in these networked systems is the evaluation of the optimal point of operation of the system. The problem is essentially challenging due to the high-dimensionality of the problem, distributed nature of resources, lack of global information and dynamic nature of operation of most of these systems. The inadequacies of the traditional centralized optimization techniques in addressing these issues have prompted the researchers to investigate distributed optimization techniques. This research work focuses on developing techniques to carry out the global optimization in a distributed fashion that explores the fundamental idea of decomposing the overall optimization problem into a number of sub-problems that utilize limited information exchanged over the network. Inspired by price-based mechanisms, the research develops two methods. First, a distributed optimization method consisting of dual decomposition and update of dual variables in the subgradient direction is developed for some different classes of resource allocation problems. Although this method is easy to implement, it has its own drawbacks. To address some of the drawbacks in distributed optimization, in this dissertation, a Newton based distributed interior point optimization method is developed. The proposed approach, which is iterative in nature, focuses on the generation of feasible solutions at each iteration and development of mechanisms that demand lesser communication. The convergence and rate of convergence of both the primal and the dual variables in the system is also analyzed using a benchmark Network Utility Maximization (NUM) problem followed by numerical simulation results. A comparative study between the proposed distributed and centralized method of optimization is also provided. The proposed distributed optimization techniques have been applied to real world systems such as optimal power allocation in Smart Grid and utility maximization in Cloud Computing systems. Both the problems belong to the class of large-scale complex network problems. In the power grids, the challenges are augmented with the nature of the decision variables, coupling effect in the network, the global constraints in the system, uncertain nature of renewable power generators, and the large-scale distributed nature of the problem. In cloud computing, resources such as memory, processing, and bandwidth are needed to be allocated to a large number of users to maximize the users' quality of experience. Finally, the research focuses on the development of a stochastic distributed optimization method for solving problems with multi-modal cost functions. As opposed to the unimodal function optimization, the widely practiced gradient descent methods fail to reach the global optimum solution when multi-modal cost functions are considered. In this dissertation, an effort is be made to develop a stochastic distributed optimization method that exploits noise based solution update to prevent the algorithm from converging into local optimum solutions. The method is applied to the Network Utility Maximization problem with multi-modal cost functions, and is compared with Genetic Algorithm.

Distributed Optimization: Advances in Theories, Methods, and Applications

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Publisher : Springer Nature
ISBN 13 : 9811561095
Total Pages : 243 pages
Book Rating : 4.8/5 (115 download)

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Book Synopsis Distributed Optimization: Advances in Theories, Methods, and Applications by : Huaqing Li

Download or read book Distributed Optimization: Advances in Theories, Methods, and Applications written by Huaqing Li and published by Springer Nature. This book was released on 2020-08-04 with total page 243 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book offers a valuable reference guide for researchers in distributed optimization and for senior undergraduate and graduate students alike. Focusing on the natures and functions of agents, communication networks and algorithms in the context of distributed optimization for networked control systems, this book introduces readers to the background of distributed optimization; recent developments in distributed algorithms for various types of underlying communication networks; the implementation of computation-efficient and communication-efficient strategies in the execution of distributed algorithms; and the frameworks of convergence analysis and performance evaluation. On this basis, the book then thoroughly studies 1) distributed constrained optimization and the random sleep scheme, from an agent perspective; 2) asynchronous broadcast-based algorithms, event-triggered communication, quantized communication, unbalanced directed networks, and time-varying networks, from a communication network perspective; and 3) accelerated algorithms and stochastic gradient algorithms, from an algorithm perspective. Finally, the applications of distributed optimization in large-scale statistical learning, wireless sensor networks, and for optimal energy management in smart grids are discussed.

Distributed Optimization and Market Analysis of Networked Systems

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ISBN 13 :
Total Pages : 179 pages
Book Rating : 4.:/5 (9 download)

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Book Synopsis Distributed Optimization and Market Analysis of Networked Systems by : Ermin Wei

Download or read book Distributed Optimization and Market Analysis of Networked Systems written by Ermin Wei and published by . This book was released on 2014 with total page 179 pages. Available in PDF, EPUB and Kindle. Book excerpt: In the interconnected world of today, large-scale multi-agent networked systems are ubiquitous. This thesis studies two classes of multi-agent systems, where each agent has local information and a local objective function. In the first class of systems, the agents are collaborative and the overall objective is to optimize the sum of local objective functions. This setup represents a general family of separable problems in large-scale multi-agent convex optimization systems, which includes the LASSO (Least-Absolute Shrinkage and Selection Operator) and many other important machine learning problems. We propose fast fully distributed both synchronous and asynchronous ADMM (Alternating Direction Method of Multipliers) based methods. Both of the proposed algorithms achieve the best known rate of convergence for this class of problems, O(1/k), where k is the number of iterations. This rate is the first rate of convergence guarantee for asynchronous distributed methods solving separable convex problems. For the synchronous algorithm, we also relate the rate of convergence to the underlying network topology. The second part of the thesis focuses on the class of systems where the agents are only interested in their local objectives. In particular, we study the market interaction in the electricity market. Instead of the traditional supply-follow-demand approach, we propose and analyze a systematic multi-period market framework, where both (price-taking) consumers and generators locally respond to price. We show that this new market interaction at competitive equilibrium is efficient and the improvement in social welfare over the traditional market can be unbounded. The resulting system, however, may feature undesirable price and generation fluctuations, which imposes significant challenges in maintaining reliability of the electricity grid. We first establish that the two fluctuations are positively correlated. Then in order to reduce both fluctuations, we introduce an explicit penalty on the price fluctuation. The penalized problem is shown to be equivalent to the existing system with storage and can be implemented in a distributed way, where each agent locally responds to price. We analyze the connection between the size of storage, consumer utility function properties and generation fluctuation in two scenarios: when demand is inelastic, we can explicitly characterize the optimal storage access policy and the generation fluctuation; when demand is elastic, the relationship between concavity and generation fluctuation is studied.

Distributed Optimization in Networked Systems

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Publisher : Springer Nature
ISBN 13 : 9811985596
Total Pages : 282 pages
Book Rating : 4.8/5 (119 download)

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Book Synopsis Distributed Optimization in Networked Systems by : Qingguo Lü

Download or read book Distributed Optimization in Networked Systems written by Qingguo Lü and published by Springer Nature. This book was released on 2023-02-08 with total page 282 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book focuses on improving the performance (convergence rate, communication efficiency, computational efficiency, etc.) of algorithms in the context of distributed optimization in networked systems and their successful application to real-world applications (smart grids and online learning). Readers may be particularly interested in the sections on consensus protocols, optimization skills, accelerated mechanisms, event-triggered strategies, variance-reduction communication techniques, etc., in connection with distributed optimization in various networked systems. This book offers a valuable reference guide for researchers in distributed optimization and for senior undergraduate and graduate students alike.

Distributed Coding and Algorithm Optimization for Large-scale Networked Systems

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ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (923 download)

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Book Synopsis Distributed Coding and Algorithm Optimization for Large-scale Networked Systems by : Saber Jafarizadeh

Download or read book Distributed Coding and Algorithm Optimization for Large-scale Networked Systems written by Saber Jafarizadeh and published by . This book was released on 2015 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Large Scale Optimization in Supply Chains and Smart Manufacturing

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Publisher : Springer Nature
ISBN 13 : 303022788X
Total Pages : 282 pages
Book Rating : 4.0/5 (32 download)

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Book Synopsis Large Scale Optimization in Supply Chains and Smart Manufacturing by : Jesús M. Velásquez-Bermúdez

Download or read book Large Scale Optimization in Supply Chains and Smart Manufacturing written by Jesús M. Velásquez-Bermúdez and published by Springer Nature. This book was released on 2019-09-06 with total page 282 pages. Available in PDF, EPUB and Kindle. Book excerpt: In this book, theory of large scale optimization is introduced with case studies of real-world problems and applications of structured mathematical modeling. The large scale optimization methods are represented by various theories such as Benders’ decomposition, logic-based Benders’ decomposition, Lagrangian relaxation, Dantzig –Wolfe decomposition, multi-tree decomposition, Van Roy’ cross decomposition and parallel decomposition for mathematical programs such as mixed integer nonlinear programming and stochastic programming. Case studies of large scale optimization in supply chain management, smart manufacturing, and Industry 4.0 are investigated with efficient implementation for real-time solutions. The features of case studies cover a wide range of fields including the Internet of things, advanced transportation systems, energy management, supply chain networks, service systems, operations management, risk management, and financial and sales management. Instructors, graduate students, researchers, and practitioners, would benefit from this book finding the applicability of large scale optimization in asynchronous parallel optimization, real-time distributed network, and optimizing the knowledge-based expert system for convex and non-convex problems.

On Distributed Optimization in Networked Systems

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ISBN 13 : 9789174151909
Total Pages : 188 pages
Book Rating : 4.1/5 (519 download)

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Book Synopsis On Distributed Optimization in Networked Systems by : Björn Johansson

Download or read book On Distributed Optimization in Networked Systems written by Björn Johansson and published by . This book was released on 2008 with total page 188 pages. Available in PDF, EPUB and Kindle. Book excerpt:

An Integrated Algorithm for Distributed Optimization in Networked Systems

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Publisher : Open Dissertation Press
ISBN 13 : 9781374706675
Total Pages : pages
Book Rating : 4.7/5 (66 download)

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Book Synopsis An Integrated Algorithm for Distributed Optimization in Networked Systems by : Yapeng Lu

Download or read book An Integrated Algorithm for Distributed Optimization in Networked Systems written by Yapeng Lu and published by Open Dissertation Press. This book was released on 2017-01-27 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt: This dissertation, "An Integrated Algorithm for Distributed Optimization in Networked Systems" by Yapeng, Lu, 呂亞鵬, was obtained from The University of Hong Kong (Pokfulam, Hong Kong) and is being sold pursuant to Creative Commons: Attribution 3.0 Hong Kong License. The content of this dissertation has not been altered in any way. We have altered the formatting in order to facilitate the ease of printing and reading of the dissertation. All rights not granted by the above license are retained by the author. DOI: 10.5353/th_b4322423 Subjects: Business logistics - Data processing Wireless sensor networks Distributed artificial intelligence - Industrial applications Algorithms

Distributed Optimization and Learning

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Publisher : Elsevier
ISBN 13 : 0443216371
Total Pages : 288 pages
Book Rating : 4.4/5 (432 download)

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Book Synopsis Distributed Optimization and Learning by : Zhongguo Li

Download or read book Distributed Optimization and Learning written by Zhongguo Li and published by Elsevier. This book was released on 2024-08-06 with total page 288 pages. Available in PDF, EPUB and Kindle. Book excerpt: Distributed Optimization and Learning: A Control-Theoretic Perspective illustrates the underlying principles of distributed optimization and learning. The book presents a systematic and self-contained description of distributed optimization and learning algorithms from a control-theoretic perspective. It focuses on exploring control-theoretic approaches and how those approaches can be utilized to solve distributed optimization and learning problems over network-connected, multi-agent systems. As there are strong links between optimization and learning, this book provides a unified platform for understanding distributed optimization and learning algorithms for different purposes. Provides a series of the latest results, including but not limited to, distributed cooperative and competitive optimization, machine learning, and optimal resource allocation Presents the most recent advances in theory and applications of distributed optimization and machine learning, including insightful connections to traditional control techniques Offers numerical and simulation results in each chapter in order to reflect engineering practice and demonstrate the main focus of developed analysis and synthesis approaches

Market-based Distributed Optimization in Autonomous Networks

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Publisher :
ISBN 13 : 9780494160053
Total Pages : 378 pages
Book Rating : 4.1/5 (6 download)

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Book Synopsis Market-based Distributed Optimization in Autonomous Networks by : Weihong Wang

Download or read book Market-based Distributed Optimization in Autonomous Networks written by Weihong Wang and published by . This book was released on 2006 with total page 378 pages. Available in PDF, EPUB and Kindle. Book excerpt: This thesis addresses performance optimization for autonomous networks with the following properties. First, the network has no dedicated server for providing resources or services, but relies on all network nodes to cooperatively provide (and consume) them. Likewise, functionalities of organizing, operating, and managing the network are carried out by the nodes themselves. Second, nodes may join and leave the network at any time, and are adaptive in contributing and consuming resources. Third, each node has only limited information about the rest of the network, due to the scale and the highly dynamic nature of the network. Recognizing the advantages and disadvantages of existing proposals, this thesis proposes a set of market-based resource management mechanisms that regulate the provision and allocation of resources in a distributed manner using service prices. We model nodes as utility-maximizing economic agents. Their individual decisions will collectively determine the provision, allocation, and usage of resources, as well as the performance of the network. By designing the distributed market mechanisms, our objective is to properly guide the decisions of participating nodes, so that the resulting network performance parameters approach those determined by network-centric centralized optimization methods. The thesis has two major contributions. First, for different resource sharing scenarios, we have designed appropriate market models and utility functions that capture relevant Quality-of-Service requirements and, with theoretical guarantees, drive the resource allocation efficiency towards the optimum. Second, we have proposed practical and efficient solutions to the utility-maximizing problems for individual nodes, so that the effectiveness of corresponding market models is maximally attained in realistic networking conditions. The thesis has presented an interdisciplinary work, combining concepts and algorithms from system control, system identification, and machine learning to overcome the limitations of underlying economic models. The proposed market models and decision making algorithms will be explained based on three application scenarios that occur most often in the overlay networking reality. With both theoretical analysis and simulation results, we have demonstrated the feasibility and effectiveness of a range of market-based schemes that optimally manage network resources in a distributed fashion.

An Integrated Algorithm for Distributed Optimization in Networked Systems

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Publisher :
ISBN 13 :
Total Pages : 206 pages
Book Rating : 4.:/5 (52 download)

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Book Synopsis An Integrated Algorithm for Distributed Optimization in Networked Systems by : Yapeng Lu

Download or read book An Integrated Algorithm for Distributed Optimization in Networked Systems written by Yapeng Lu and published by . This book was released on 2009 with total page 206 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Networked Control Systems

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Publisher : Springer Science & Business Media
ISBN 13 : 0857290320
Total Pages : 373 pages
Book Rating : 4.8/5 (572 download)

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Book Synopsis Networked Control Systems by : Alberto Bemporad

Download or read book Networked Control Systems written by Alberto Bemporad and published by Springer Science & Business Media. This book was released on 2010-10-14 with total page 373 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book nds its origin in the WIDE PhD School on Networked Control Systems, which we organized in July 2009 in Siena, Italy. Having gathered experts on all the aspects of networked control systems, it was a small step to go from the summer school to the book, certainly given the enthusiasm of the lecturers at the school. We felt that a book collecting overviewson the important developmentsand open pr- lems in the eld of networked control systems could stimulate and support future research in this appealing area. Given the tremendouscurrentinterests in distributed control exploiting wired and wireless communication networks, the time seemed to be right for the book that lies now in front of you. The goal of the book is to set out the core techniques and tools that are ava- able for the modeling, analysis and design of networked control systems. Roughly speaking, the book consists of three parts. The rst part presents architectures for distributed control systems and models of wired and wireless communication n- works. In particular, in the rst chapter important technological and architectural aspects on distributed control systems are discussed. The second chapter provides insight in the behavior of communication channels in terms of delays, packet loss and information constraints leading to suitable modeling paradigms for commu- cation networks.

Distributed Optimization, Game and Learning Algorithms

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Publisher : Springer Nature
ISBN 13 : 9813345284
Total Pages : 227 pages
Book Rating : 4.8/5 (133 download)

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Book Synopsis Distributed Optimization, Game and Learning Algorithms by : Huiwei Wang

Download or read book Distributed Optimization, Game and Learning Algorithms written by Huiwei Wang and published by Springer Nature. This book was released on 2021-01-04 with total page 227 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book provides the fundamental theory of distributed optimization, game and learning. It includes those working directly in optimization,-and also many other issues like time-varying topology, communication delay, equality or inequality constraints,-and random projections. This book is meant for the researcher and engineer who uses distributed optimization, game and learning theory in fields like dynamic economic dispatch, demand response management and PHEV routing of smart grids.

Distributed Decision Making and Control

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Publisher : Springer
ISBN 13 : 9781447122661
Total Pages : 426 pages
Book Rating : 4.1/5 (226 download)

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Book Synopsis Distributed Decision Making and Control by : Rolf Johansson

Download or read book Distributed Decision Making and Control written by Rolf Johansson and published by Springer. This book was released on 2012-02-05 with total page 426 pages. Available in PDF, EPUB and Kindle. Book excerpt: Distributed Decision Making and Control is a mathematical treatment of relevant problems in distributed control, decision and multiagent systems, The research reported was prompted by the recent rapid development in large-scale networked and embedded systems and communications. One of the main reasons for the growing complexity in such systems is the dynamics introduced by computation and communication delays. Reliability, predictability, and efficient utilization of processing power and network resources are central issues and the new theory and design methods presented here are needed to analyze and optimize the complex interactions that arise between controllers, plants and networks. The text also helps to meet requirements arising from industrial practice for a more systematic approach to the design of distributed control structures and corresponding information interfaces Theory for coordination of many different control units is closely related to economics and game theory network uses being dictated by congestion-based pricing of a given pathway. The text extends existing methods which represent pricing mechanisms as Lagrange multipliers to distributed optimization in a dynamic setting. In Distributed Decision Making and Control, the main theme is distributed decision making and control with contributions to a general theory and methodology for control of complex engineering systems in engineering, economics and logistics. This includes scalable methods and tools for modeling, analysis and control synthesis, as well as reliable implementations using networked embedded systems. Academic researchers and graduate students in control science, system theory, and mathematical economics and logistics will find mcu to interest them in this collection, first presented orally by the contributors during a sequence of workshops organized in Spring 2010 by the Lund Center for Control of Complex Engineering Systems, a Linnaeus Center at Lund University, Sweden.>

Network Optimization: Continuous and Discrete Models

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Publisher : Athena Scientific
ISBN 13 : 1886529027
Total Pages : 607 pages
Book Rating : 4.8/5 (865 download)

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Book Synopsis Network Optimization: Continuous and Discrete Models by : Dimitri Bertsekas

Download or read book Network Optimization: Continuous and Discrete Models written by Dimitri Bertsekas and published by Athena Scientific. This book was released on 1998-01-01 with total page 607 pages. Available in PDF, EPUB and Kindle. Book excerpt: An insightful, comprehensive, and up-to-date treatment of linear, nonlinear, and discrete/combinatorial network optimization problems, their applications, and their analytical and algorithmic methodology. It covers extensively theory, algorithms, and applications, and it aims to bridge the gap between linear and nonlinear network optimization on one hand, and integer/combinatorial network optimization on the other. It complements several of our books: Convex Optimization Theory (Athena Scientific, 2009), Convex Optimization Algorithms (Athena Scientific, 2015), Introduction to Linear Optimization (Athena Scientific, 1997), Nonlinear Programming (Athena Scientific, 1999), as well as our other book on the subject of network optimization Network Flows and Monotropic Optimization (Athena Scientific, 1998).

Multi-agent Optimization

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Publisher : Springer
ISBN 13 : 3319971425
Total Pages : 310 pages
Book Rating : 4.3/5 (199 download)

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Book Synopsis Multi-agent Optimization by : Angelia Nedić

Download or read book Multi-agent Optimization written by Angelia Nedić and published by Springer. This book was released on 2018-11-01 with total page 310 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book contains three well-written research tutorials that inform the graduate reader about the forefront of current research in multi-agent optimization. These tutorials cover topics that have not yet found their way in standard books and offer the reader the unique opportunity to be guided by major researchers in the respective fields. Multi-agent optimization, lying at the intersection of classical optimization, game theory, and variational inequality theory, is at the forefront of modern optimization and has recently undergone a dramatic development. It seems timely to provide an overview that describes in detail ongoing research and important trends. This book concentrates on Distributed Optimization over Networks; Differential Variational Inequalities; and Advanced Decomposition Algorithms for Multi-agent Systems. This book will appeal to both mathematicians and mathematically oriented engineers and will be the source of inspiration for PhD students and researchers.

Nonlinear and Adaptive Control Systems

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Publisher : Institution of Engineering and Technology
ISBN 13 : 1849195749
Total Pages : 288 pages
Book Rating : 4.8/5 (491 download)

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Book Synopsis Nonlinear and Adaptive Control Systems by : Zhengtao Ding

Download or read book Nonlinear and Adaptive Control Systems written by Zhengtao Ding and published by Institution of Engineering and Technology. This book was released on 2013-04-04 with total page 288 pages. Available in PDF, EPUB and Kindle. Book excerpt: An adaptive system for linear systems with unknown parameters is a nonlinear system. The analysis of such adaptive systems requires similar techniques to analyse nonlinear systems. Therefore it is natural to treat adaptive control as a part of nonlinear control systems. Nonlinear and Adaptive Control Systems treats nonlinear control and adaptive controlin a unified framework, presenting the major results at a moderate mathematical level, suitable for MSc students and engineers with undergraduate degrees. Topics covered include introduction to nonlinear systems; state space models; describing functions forcommon nonlinear components; stability theory; feedback linearization; adaptive control; nonlinear observer design; backstepping design; disturbance rejection and output regulation; and control applications, including harmonic estimation and rejection inpower distribution systems, observer and control design for circadian rhythms, and discrete-time implementation of continuous-timenonlinear control laws.