Experimental Research in Evolutionary Computation

Experimental Research in Evolutionary Computation
Title Experimental Research in Evolutionary Computation PDF eBook
Author Thomas Bartz-Beielstein
Publisher Springer Science & Business Media
Pages 221
Release 2006-05-09
Genre Computers
ISBN 354032027X

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This book introduces the new experimentalism in evolutionary computation, providing tools to understand algorithms and programs and their interaction with optimization problems. It develops and applies statistical techniques to analyze and compare modern search heuristics such as evolutionary algorithms and particle swarm optimization. The book bridges the gap between theory and experiment by providing a self-contained experimental methodology and many examples.

Advances in Evolutionary Computing

Advances in Evolutionary Computing
Title Advances in Evolutionary Computing PDF eBook
Author Ashish Ghosh
Publisher Springer Science & Business Media
Pages 1001
Release 2012-12-06
Genre Computers
ISBN 3642189652

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This book provides a collection of fourty articles containing new material on both theoretical aspects of Evolutionary Computing (EC), and demonstrating the usefulness/success of it for various kinds of large-scale real world problems. Around 23 articles deal with various theoretical aspects of EC and 17 articles demonstrate the success of EC methodologies. These articles are written by leading experts of the field from different countries all over the world.

Evolutionary Statistical Procedures

Evolutionary Statistical Procedures
Title Evolutionary Statistical Procedures PDF eBook
Author Roberto Baragona
Publisher Springer Science & Business Media
Pages 283
Release 2011-01-03
Genre Computers
ISBN 3642162185

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This proposed text appears to be a good introduction to evolutionary computation for use in applied statistics research. The authors draw from a vast base of knowledge about the current literature in both the design of evolutionary algorithms and statistical techniques. Modern statistical research is on the threshold of solving increasingly complex problems in high dimensions, and the generalization of its methodology to parameters whose estimators do not follow mathematically simple distributions is underway. Many of these challenges involve optimizing functions for which analytic solutions are infeasible. Evolutionary algorithms represent a powerful and easily understood means of approximating the optimum value in a variety of settings. The proposed text seeks to guide readers through the crucial issues of optimization problems in statistical settings and the implementation of tailored methods (including both stand-alone evolutionary algorithms and hybrid crosses of these procedures with standard statistical algorithms like Metropolis-Hastings) in a variety of applications. This book would serve as an excellent reference work for statistical researchers at an advanced graduate level or beyond, particularly those with a strong background in computer science.

Evolutionary Computation for Modeling and Optimization

Evolutionary Computation for Modeling and Optimization
Title Evolutionary Computation for Modeling and Optimization PDF eBook
Author Daniel Ashlock
Publisher Springer Science & Business Media
Pages 578
Release 2006-04-04
Genre Computers
ISBN 0387319093

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Concentrates on developing intuition about evolutionary computation and problem solving skills and tool sets. Lots of applications and test problems, including a biotechnology chapter.

Evolutionary Computation

Evolutionary Computation
Title Evolutionary Computation PDF eBook
Author Xin Yao
Publisher World Scientific
Pages 384
Release 1999
Genre Science
ISBN 9789810223069

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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.

Parallel Problem Solving from Nature - PPSN VIII

Parallel Problem Solving from Nature - PPSN VIII
Title Parallel Problem Solving from Nature - PPSN VIII PDF eBook
Author Xin Yao
Publisher Springer Science & Business Media
Pages 1204
Release 2004-09-13
Genre Computers
ISBN 3540230920

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This book constitutes the refereed proceedings of the 8th International Conference on Parallel Problem Solving from Nature, PPSN 2004, held in Birmingham, UK, in September 2004. The 119 revised full papers presented were carefully reviewed and selected from 358 submissions. The papers address all current issues in biologically inspired computing; they are organized in topical sections on theoretical and foundational issues, new algorithms, applications, multi-objective optimization, co-evolution, robotics and multi-agent systems, and learning classifier systems and data mining.

Evolutionary Algorithms for Solving Multi-Objective Problems

Evolutionary Algorithms for Solving Multi-Objective Problems
Title Evolutionary Algorithms for Solving Multi-Objective Problems PDF eBook
Author Carlos Coello Coello
Publisher Springer Science & Business Media
Pages 810
Release 2007-08-26
Genre Computers
ISBN 0387367977

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This textbook is a second edition of Evolutionary Algorithms for Solving Multi-Objective Problems, significantly expanded and adapted for the classroom. The various features of multi-objective evolutionary algorithms are presented here in an innovative and student-friendly fashion, incorporating state-of-the-art research. The book disseminates the application of evolutionary algorithm techniques to a variety of practical problems. It contains exhaustive appendices, index and bibliography and links to a complete set of teaching tutorials, exercises and solutions.