Exploitation of Linkage Learning in Evolutionary Algorithms

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Publisher : Springer Science & Business Media
ISBN 13 : 3642128343
Total Pages : 245 pages
Book Rating : 4.6/5 (421 download)

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Book Synopsis Exploitation of Linkage Learning in Evolutionary Algorithms by : Ying-ping Chen

Download or read book Exploitation of Linkage Learning in Evolutionary Algorithms written by Ying-ping Chen and published by Springer Science & Business Media. This book was released on 2010-04-16 with total page 245 pages. Available in PDF, EPUB and Kindle. Book excerpt: One major branch of enhancing the performance of evolutionary algorithms is the exploitation of linkage learning. This monograph aims to capture the recent progress of linkage learning, by compiling a series of focused technical chapters to keep abreast of the developments and trends in the area of linkage. In evolutionary algorithms, linkage models the relation between decision variables with the genetic linkage observed in biological systems, and linkage learning connects computational optimization methodologies and natural evolution mechanisms. Exploitation of linkage learning can enable us to design better evolutionary algorithms as well as to potentially gain insight into biological systems. Linkage learning has the potential to become one of the dominant aspects of evolutionary algorithms; research in this area can potentially yield promising results in addressing the scalability issues.

Linkage in Evolutionary Computation

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Publisher : Springer
ISBN 13 : 3540850686
Total Pages : 487 pages
Book Rating : 4.5/5 (48 download)

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Book Synopsis Linkage in Evolutionary Computation by : Ying-ping Chen

Download or read book Linkage in Evolutionary Computation written by Ying-ping Chen and published by Springer. This book was released on 2008-09-10 with total page 487 pages. Available in PDF, EPUB and Kindle. Book excerpt: In recent years, the issue of linkage in GEAs has garnered greater attention and recognition from researchers. Conventional approaches that rely much on ad hoc tweaking of parameters to control the search by balancing the level of exploitation and exploration are grossly inadequate. As shown in the work reported here, such parameters tweaking based approaches have their limits; they can be easily ”fooled” by cases of triviality or peculiarity of the class of problems that the algorithms are designed to handle. Furthermore, these approaches are usually blind to the interactions between the decision variables, thereby disrupting the partial solutions that are being built up along the way.

Extending the Scalability of Linkage Learning Genetic Algorithms

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Publisher : Springer Science & Business Media
ISBN 13 : 9783540284598
Total Pages : 152 pages
Book Rating : 4.2/5 (845 download)

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Book Synopsis Extending the Scalability of Linkage Learning Genetic Algorithms by : Ying-ping Chen

Download or read book Extending the Scalability of Linkage Learning Genetic Algorithms written by Ying-ping Chen and published by Springer Science & Business Media. This book was released on 2006 with total page 152 pages. Available in PDF, EPUB and Kindle. Book excerpt: Genetic algorithms (GAs) are powerful search techniques based on principles of evolution and widely applied to solve problems in many disciplines. However, most GAs employed in practice nowadays are unable to learn genetic linkage and suffer from the linkage problem. The linkage learning genetic algorithm (LLGA) was proposed to tackle the linkage problem with several specially designed mechanisms. While the LLGA performs much better on badly scaled problems than simple GAs, it does not work well on uniformly scaled problems as other competent GAs. Therefore, we need to understand why it is so and need to know how to design a better LLGA or whether there are certain limits of such a linkage learning process. This book aims to gain better understanding of the LLGA in theory and to improve the LLGA's performance in practice. It starts with a survey of the existing genetic linkage learning techniques and describes the steps and approaches taken to tackle the research topics, including using promoters, developing the convergence time model, and adopting subchromosomes.

Linkage in Evolutionary Computation

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Publisher : Springer Science & Business Media
ISBN 13 : 3540850678
Total Pages : 487 pages
Book Rating : 4.5/5 (48 download)

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Book Synopsis Linkage in Evolutionary Computation by : Ying-ping Chen

Download or read book Linkage in Evolutionary Computation written by Ying-ping Chen and published by Springer Science & Business Media. This book was released on 2008-09-26 with total page 487 pages. Available in PDF, EPUB and Kindle. Book excerpt: In recent years, the issue of linkage in GEAs has garnered greater attention and recognition from researchers. Conventional approaches that rely much on ad hoc tweaking of parameters to control the search by balancing the level of exploitation and exploration are grossly inadequate. As shown in the work reported here, such parameters tweaking based approaches have their limits; they can be easily ”fooled” by cases of triviality or peculiarity of the class of problems that the algorithms are designed to handle. Furthermore, these approaches are usually blind to the interactions between the decision variables, thereby disrupting the partial solutions that are being built up along the way.

Evolutionary Algorithms for Solving Multi-Objective Problems

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Publisher : Springer Science & Business Media
ISBN 13 : 1475751842
Total Pages : 600 pages
Book Rating : 4.4/5 (757 download)

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Book Synopsis Evolutionary Algorithms for Solving Multi-Objective Problems by : Carlos Coello Coello

Download or read book Evolutionary Algorithms for Solving Multi-Objective Problems written by Carlos Coello Coello and published by Springer Science & Business Media. This book was released on 2013-03-09 with total page 600 pages. Available in PDF, EPUB and Kindle. Book excerpt: Researchers and practitioners alike are increasingly turning to search, op timization, and machine-learning procedures based on natural selection and natural genetics to solve problems across the spectrum of human endeavor. These genetic algorithms and techniques of evolutionary computation are solv ing problems and inventing new hardware and software that rival human designs. The Kluwer Series on Genetic Algorithms and Evolutionary Computation pub lishes research monographs, edited collections, and graduate-level texts in this rapidly growing field. Primary areas of coverage include the theory, implemen tation, and application of genetic algorithms (GAs), evolution strategies (ESs), evolutionary programming (EP), learning classifier systems (LCSs) and other variants of genetic and evolutionary computation (GEC). The series also pub lishes texts in related fields such as artificial life, adaptive behavior, artificial immune systems, agent-based systems, neural computing, fuzzy systems, and quantum computing as long as GEC techniques are part of or inspiration for the system being described. This encyclopedic volume on the use of the algorithms of genetic and evolu tionary computation for the solution of multi-objective problems is a landmark addition to the literature that comes just in the nick of time. Multi-objective evolutionary algorithms (MOEAs) are receiving increasing and unprecedented attention. Researchers and practitioners are finding an irresistible match be tween the popUlation available in most genetic and evolutionary algorithms and the need in multi-objective problems to approximate the Pareto trade-off curve or surface.

EVOLVE- A Bridge between Probability, Set Oriented Numerics and Evolutionary Computation

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Publisher : Springer
ISBN 13 : 3642327265
Total Pages : 422 pages
Book Rating : 4.6/5 (423 download)

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Book Synopsis EVOLVE- A Bridge between Probability, Set Oriented Numerics and Evolutionary Computation by : Emilia Tantar

Download or read book EVOLVE- A Bridge between Probability, Set Oriented Numerics and Evolutionary Computation written by Emilia Tantar and published by Springer. This book was released on 2012-09-14 with total page 422 pages. Available in PDF, EPUB and Kindle. Book excerpt: The aim of this book is to provide a strong theoretical support for understanding and analyzing the behavior of evolutionary algorithms, as well as for creating a bridge between probability, set-oriented numerics and evolutionary computation. The volume encloses a collection of contributions that were presented at the EVOLVE 2011 international workshop, held in Luxembourg, May 25-27, 2011, coming from invited speakers and also from selected regular submissions. The aim of EVOLVE is to unify the perspectives offered by probability, set oriented numerics and evolutionary computation. EVOLVE focuses on challenging aspects that arise at the passage from theory to new paradigms and practice, elaborating on the foundations of evolutionary algorithms and theory-inspired methods merged with cutting-edge techniques that ensure performance guarantee factors. EVOLVE is also intended to foster a growing interest for robust and efficient methods with a sound theoretical background. The chapters enclose challenging theoretical findings, concrete optimization problems as well as new perspectives. By gathering contributions from researchers with different backgrounds, the book is expected to set the basis for a unified view and vocabulary where theoretical advancements may echo in different domains.

Practical Applications of Evolutionary Computation to Financial Engineering

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Publisher : Springer Science & Business Media
ISBN 13 : 3642276482
Total Pages : 253 pages
Book Rating : 4.6/5 (422 download)

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Book Synopsis Practical Applications of Evolutionary Computation to Financial Engineering by : Hitoshi Iba

Download or read book Practical Applications of Evolutionary Computation to Financial Engineering written by Hitoshi Iba and published by Springer Science & Business Media. This book was released on 2012-02-15 with total page 253 pages. Available in PDF, EPUB and Kindle. Book excerpt: “Practical Applications of Evolutionary Computation to Financial Engineering” presents the state of the art techniques in Financial Engineering using recent results in Machine Learning and Evolutionary Computation. This book bridges the gap between academics in computer science and traders and explains the basic ideas of the proposed systems and the financial problems in ways that can be understood by readers without previous knowledge on either of the fields. To cement the ideas discussed in the book, software packages are offered that implement the systems described within. The book is structured so that each chapter can be read independently from the others. Chapters 1 and 2 describe evolutionary computation. The third chapter is an introduction to financial engineering problems for readers who are unfamiliar with this area. The following chapters each deal, in turn, with a different problem in the financial engineering field describing each problem in detail and focusing on solutions based on evolutionary computation. Finally, the two appendixes describe software packages that implement the solutions discussed in this book, including installation manuals and parameter explanations.

Advances in Computational Intelligence Systems

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Publisher : Springer
ISBN 13 : 3319465627
Total Pages : 508 pages
Book Rating : 4.3/5 (194 download)

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Book Synopsis Advances in Computational Intelligence Systems by : Plamen Angelov

Download or read book Advances in Computational Intelligence Systems written by Plamen Angelov and published by Springer. This book was released on 2016-09-06 with total page 508 pages. Available in PDF, EPUB and Kindle. Book excerpt: The book is a timely report on advanced methods and applications of computational intelligence systems. It covers a long list of interconnected research areas, such as fuzzy systems, neural networks, evolutionary computation, evolving systems and machine learning. The individual chapters are based on peer-reviewed contributions presented at the 16th Annual UK Workshop on Computational Intelligence, held on September 7-9, 2016, in Lancaster, UK. The book puts a special emphasis on novels methods and reports on their use in a wide range of applications areas, thus providing both academics and professionals with a comprehensive and timely overview of new trends in computational intelligence.

Hybrid Evolutionary Algorithms

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Publisher : Springer
ISBN 13 : 3540732977
Total Pages : 404 pages
Book Rating : 4.5/5 (47 download)

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Book Synopsis Hybrid Evolutionary Algorithms by : Crina Grosan

Download or read book Hybrid Evolutionary Algorithms written by Crina Grosan and published by Springer. This book was released on 2007-08-29 with total page 404 pages. Available in PDF, EPUB and Kindle. Book excerpt: This edited volume is targeted at presenting the latest state-of-the-art methodologies in "Hybrid Evolutionary Algorithms". The chapters deal with the theoretical and methodological aspects, as well as various applications to many real world problems from science, technology, business or commerce. Overall, the book has 14 chapters including an introductory chapter giving the fundamental definitions and some important research challenges. The contributions were selected on the basis of fundamental ideas/concepts rather than the thoroughness of techniques deployed.

Genetic Programming Theory and Practice XII

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Publisher : Springer
ISBN 13 : 3319160303
Total Pages : 182 pages
Book Rating : 4.3/5 (191 download)

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Book Synopsis Genetic Programming Theory and Practice XII by : Rick Riolo

Download or read book Genetic Programming Theory and Practice XII written by Rick Riolo and published by Springer. This book was released on 2015-06-04 with total page 182 pages. Available in PDF, EPUB and Kindle. Book excerpt: These contributions, written by the foremost international researchers and practitioners of Genetic Programming (GP), explore the synergy between theoretical and empirical results on real-world problems, producing a comprehensive view of the state of the art in GP. Topics in this volume include: gene expression regulation, novel genetic models for glaucoma, inheritable epigenetics, combinators in genetic programming, sequential symbolic regression, system dynamics, sliding window symbolic regression, large feature problems, alignment in the error space, HUMIE winners, Boolean multiplexer function, and highly distributed genetic programming systems. Application areas include chemical process control, circuit design, financial data mining and bioinformatics. Readers will discover large-scale, real-world applications of GP to a variety of problem domains via in-depth presentations of the latest and most significant results.

Green Communications and Networks

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Publisher : Springer Science & Business Media
ISBN 13 : 9400721684
Total Pages : 1547 pages
Book Rating : 4.4/5 (7 download)

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Book Synopsis Green Communications and Networks by : Chenguang Yang

Download or read book Green Communications and Networks written by Chenguang Yang and published by Springer Science & Business Media. This book was released on 2012-01-05 with total page 1547 pages. Available in PDF, EPUB and Kindle. Book excerpt: The objective of GCN 2011 is to facilitate an exchange of information on best practices for the latest research advances in the area of green communications and networks, which mainly includes the intelligent control, or efficient management, or optimal design of access network infrastructures, home networks, terminal equipment, and etc. Topics of interests include network design methodology, enabling technologies, network components and devices, applications, others and emerging new topics.

Reinforcement Learning

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Publisher : Springer Science & Business Media
ISBN 13 : 3642276458
Total Pages : 653 pages
Book Rating : 4.6/5 (422 download)

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Book Synopsis Reinforcement Learning by : Marco Wiering

Download or read book Reinforcement Learning written by Marco Wiering and published by Springer Science & Business Media. This book was released on 2012-03-05 with total page 653 pages. Available in PDF, EPUB and Kindle. Book excerpt: Reinforcement learning encompasses both a science of adaptive behavior of rational beings in uncertain environments and a computational methodology for finding optimal behaviors for challenging problems in control, optimization and adaptive behavior of intelligent agents. As a field, reinforcement learning has progressed tremendously in the past decade. The main goal of this book is to present an up-to-date series of survey articles on the main contemporary sub-fields of reinforcement learning. This includes surveys on partially observable environments, hierarchical task decompositions, relational knowledge representation and predictive state representations. Furthermore, topics such as transfer, evolutionary methods and continuous spaces in reinforcement learning are surveyed. In addition, several chapters review reinforcement learning methods in robotics, in games, and in computational neuroscience. In total seventeen different subfields are presented by mostly young experts in those areas, and together they truly represent a state-of-the-art of current reinforcement learning research. Marco Wiering works at the artificial intelligence department of the University of Groningen in the Netherlands. He has published extensively on various reinforcement learning topics. Martijn van Otterlo works in the cognitive artificial intelligence group at the Radboud University Nijmegen in The Netherlands. He has mainly focused on expressive knowledge representation in reinforcement learning settings.

Evolutionary Learning: Advances in Theories and Algorithms

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Publisher : Springer
ISBN 13 : 9811359563
Total Pages : 361 pages
Book Rating : 4.8/5 (113 download)

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Book Synopsis Evolutionary Learning: Advances in Theories and Algorithms by : Zhi-Hua Zhou

Download or read book Evolutionary Learning: Advances in Theories and Algorithms written by Zhi-Hua Zhou and published by Springer. This book was released on 2019-05-22 with total page 361 pages. Available in PDF, EPUB and Kindle. Book excerpt: Many machine learning tasks involve solving complex optimization problems, such as working on non-differentiable, non-continuous, and non-unique objective functions; in some cases it can prove difficult to even define an explicit objective function. Evolutionary learning applies evolutionary algorithms to address optimization problems in machine learning, and has yielded encouraging outcomes in many applications. However, due to the heuristic nature of evolutionary optimization, most outcomes to date have been empirical and lack theoretical support. This shortcoming has kept evolutionary learning from being well received in the machine learning community, which favors solid theoretical approaches. Recently there have been considerable efforts to address this issue. This book presents a range of those efforts, divided into four parts. Part I briefly introduces readers to evolutionary learning and provides some preliminaries, while Part II presents general theoretical tools for the analysis of running time and approximation performance in evolutionary algorithms. Based on these general tools, Part III presents a number of theoretical findings on major factors in evolutionary optimization, such as recombination, representation, inaccurate fitness evaluation, and population. In closing, Part IV addresses the development of evolutionary learning algorithms with provable theoretical guarantees for several representative tasks, in which evolutionary learning offers excellent performance.

Genetic Programming Theory and Practice VIII

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Publisher : Springer Science & Business Media
ISBN 13 : 1441977473
Total Pages : 270 pages
Book Rating : 4.4/5 (419 download)

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Book Synopsis Genetic Programming Theory and Practice VIII by : Rick Riolo

Download or read book Genetic Programming Theory and Practice VIII written by Rick Riolo and published by Springer Science & Business Media. This book was released on 2010-10-20 with total page 270 pages. Available in PDF, EPUB and Kindle. Book excerpt: The contributions in this volume are written by the foremost international researchers and practitioners in the GP arena. They examine the similarities and differences between theoretical and empirical results on real-world problems. The text explores the synergy between theory and practice, producing a comprehensive view of the state of the art in GP application. Topics include: FINCH: A System for Evolving Java, Practical Autoconstructive Evolution, The Rubik Cube and GP Temporal Sequence Learning, Ensemble classifiers: AdaBoost and Orthogonal Evolution of Teams, Self-modifying Cartesian GP, Abstract Expression Grammar Symbolic Regression, Age-Fitness Pareto Optimization, Scalable Symbolic Regression by Continuous Evolution, Symbolic Density Models, GP Transforms in Linear Regression Situations, Protein Interactions in a Computational Evolution System, Composition of Music and Financial Strategies via GP, and Evolutionary Art Using Summed Multi-Objective Ranks. Readers will discover large-scale, real-world applications of GP to a variety of problem domains via in-depth presentations of the latest and most significant results in GP .

Evolutionary Computation

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Publisher : World Scientific
ISBN 13 : 9789810223069
Total Pages : 384 pages
Book Rating : 4.2/5 (23 download)

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Book Synopsis Evolutionary Computation by : Xin Yao

Download or read book Evolutionary Computation written by Xin Yao and published by World Scientific. This book was released on 1999 with total page 384 pages. Available in PDF, EPUB and Kindle. Book excerpt: Evolutionary computation is the study of computational systems which use ideas and get inspiration from natural evolution and adaptation. This book is devoted to the theory and application of evolutionary computation. It is a self-contained volume which covers both introductory material and selected advanced topics. The book can roughly be divided into two major parts: the introductory one and the one on selected advanced topics. Each part consists of several chapters which present an in-depth discussion of selected topics. A strong connection is established between evolutionary algorithms and traditional search algorithms. This connection enables us to incorporate ideas in more established fields into evolutionary algorithms. The book is aimed at a wide range of readers. It does not require previous exposure to the field since introductory material is included. It will be of interest to anyone who is interested in adaptive optimization and learning. People in computer science, artificial intelligence, operations research, and various engineering fields will find it particularly interesting.

Genetic Programming Theory and Practice IX

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Publisher : Springer Science & Business Media
ISBN 13 : 1461417708
Total Pages : 288 pages
Book Rating : 4.4/5 (614 download)

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Book Synopsis Genetic Programming Theory and Practice IX by : Rick Riolo

Download or read book Genetic Programming Theory and Practice IX written by Rick Riolo and published by Springer Science & Business Media. This book was released on 2011-11-02 with total page 288 pages. Available in PDF, EPUB and Kindle. Book excerpt: These contributions, written by the foremost international researchers and practitioners of Genetic Programming (GP), explore the synergy between theoretical and empirical results on real-world problems, producing a comprehensive view of the state of the art in GP. Topics include: modularity and scalability; evolvability; human-competitive results; the need for important high-impact GP-solvable problems;; the risks of search stagnation and of cutting off paths to solutions; the need for novelty; empowering GP search with expert knowledge; In addition, GP symbolic regression is thoroughly discussed, addressing such topics as guaranteed reproducibility of SR; validating SR results, measuring and controlling genotypic complexity; controlling phenotypic complexity; identifying, monitoring, and avoiding over-fitting; finding a comprehensive collection of SR benchmarks, comparing SR to machine learning. This text is for all GP explorers. Readers will discover large-scale, real-world applications of GP to a variety of problem domains via in-depth presentations of the latest and most significant results.

Agent-Based Evolutionary Search

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Publisher : Springer Science & Business Media
ISBN 13 : 3642134254
Total Pages : 293 pages
Book Rating : 4.6/5 (421 download)

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Book Synopsis Agent-Based Evolutionary Search by : Ruhul A. Sarker

Download or read book Agent-Based Evolutionary Search written by Ruhul A. Sarker and published by Springer Science & Business Media. This book was released on 2010-07-12 with total page 293 pages. Available in PDF, EPUB and Kindle. Book excerpt: Agent based evolutionary search is an emerging paradigm in computational int- ligence offering the potential to conceptualize and solve a variety of complex problems such as currency trading, production planning, disaster response m- agement, business process management etc. There has been a significant growth in the number of publications related to the development and applications of agent based systems in recent years which has prompted special issues of journals and dedicated sessions in premier conferences. The notion of an agent with its ability to sense, learn and act autonomously - lows the development of a plethora of efficient algorithms to deal with complex problems. This notion of an agent differs significantly from a restrictive definition of a solution in an evolutionary algorithm and opens up the possibility to model and capture emergent behavior of complex systems through a natural age- oriented decomposition of the problem space. While this flexibility of represen- tion offered by agent based systems is widely acknowledged, they need to be - signed for specific purposes capturing the right level of details and description. This edited volume is aimed to provide the readers with a brief background of agent based evolutionary search, recent developments and studies dealing with various levels of information abstraction and applications of agent based evo- tionary systems. There are 12 peer reviewed chapters in this book authored by d- tinguished researchers who have shared their experience and findings spanning across a wide range of applications.