Metaheuristics for dynamic optimization:
<p>This book is an updated effort in summarizing the trending topics and new hot research lines in solving dynamic problems using metaheuristics. An analysis of the present state in solving complex problems quickly draws a clear picture: problems that change in time, having noise and uncertain...
Gespeichert in:
Weitere Verfasser: | |
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Format: | Elektronisch E-Book |
Sprache: | English |
Veröffentlicht: |
Berlin [u.a.]
Springer
2013
|
Schriftenreihe: | Studies in computational intelligence
433 |
Schlagworte: | |
Online-Zugang: | BTU01 FHA01 FHI01 FHN01 FHR01 FKE01 FWS01 UBY01 Volltext Inhaltsverzeichnis Abstract |
Zusammenfassung: | <p>This book is an updated effort in summarizing the trending topics and new hot research lines in solving dynamic problems using metaheuristics. An analysis of the present state in solving complex problems quickly draws a clear picture: problems that change in time, having noise and uncertainties in their definition are becoming<br>very important. The tools to face these problems are still to be built, since existing techniques are either slow or inefficient in tracking the many global optima that those problems are presenting to the solver technique.</p><p>Thus, this book is devoted to include several of the most important advances in solving dynamic problems. Metaheuristics are the more popular tools to this end, and then we can find in the book how to best use genetic algorithms, particle swarm, ant colonies, immune systems, variable neighborhood search, and many other bioinspired<br>techniques. Also, neural network solutions are considered in this book. </p><p>Both, theory and practice have been addressed in the chapters of the book. Mathematical background and methodological tools in solving this new class of problems and applications are included. From the applications point of view, not just academic benchmarks are dealt with, but also real world applications in logistics and bioinformatics<br>are discussed here. The book then covers theory and practice, as well as discrete versus continuous dynamic optimization, in the aim of creating a fresh and comprehensive volume. This book is targeted to either beginners and experienced practitioners in dynamic optimization, since we took care of devising the chapters in a way that a wide audience could profit from its contents. We hope to offer a single source for up-to-date information in dynamic optimization, an inspiring and attractive new research domain that appeared in these last years and is here to stay. </p> |
Beschreibung: | From the Contents: Performance Analysis of Dynamic Optimization Algorithms -- Quantitative Performance Measures for Dynamic Optimization Problems -- Dynamic Function Optimization: The Moving Peaks Benchmark -- SRCS: a technique for comparing multiple algorithms under several factors in Dynamic Optimization Problems -- Dynamic Combinatorial Optimization Problems: A Fitness Landscape Analysis -- Two Approaches for Single and Multi-Objective Dynamic Optimization -- Self-Adaptive Differential Evolution for Dynamic Environments with Fluctuating Numbers of Optima -- Dynamic multi-objective optimization using PSO. |
Beschreibung: | 1 Online-Ressource (XXXII, 400 p. 103 illus) |
ISBN: | 9783642306655 |
DOI: | 10.1007/978-3-642-30665-5 |
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520 | |a <p>This book is an updated effort in summarizing the trending topics and new hot research lines in solving dynamic problems using metaheuristics. An analysis of the present state in solving complex problems quickly draws a clear picture: problems that change in time, having noise and uncertainties in their definition are becoming<br>very important. The tools to face these problems are still to be built, since existing techniques are either slow or inefficient in tracking the many global optima that those problems are presenting to the solver technique.</p><p>Thus, this book is devoted to include several of the most important advances in solving dynamic problems. Metaheuristics are the more popular tools to this end, and then we can find in the book how to best use genetic algorithms, particle swarm, ant colonies, immune systems, variable neighborhood search, and many other bioinspired<br>techniques. Also, neural network solutions are considered in this book. </p><p>Both, theory and practice have been addressed in the chapters of the book. Mathematical background and methodological tools in solving this new class of problems and applications are included. From the applications point of view, not just academic benchmarks are dealt with, but also real world applications in logistics and bioinformatics<br>are discussed here. The book then covers theory and practice, as well as discrete versus continuous dynamic optimization, in the aim of creating a fresh and comprehensive volume. This book is targeted to either beginners and experienced practitioners in dynamic optimization, since we took care of devising the chapters in a way that a wide audience could profit from its contents. We hope to offer a single source for up-to-date information in dynamic optimization, an inspiring and attractive new research domain that appeared in these last years and is here to stay. </p> | ||
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adam_text | METAHEURISTICS FOR DYNAMIC OPTIMIZATION
/
: 2013
TABLE OF CONTENTS / INHALTSVERZEICHNIS
FROM THE CONTENTS: PERFORMANCE ANALYSIS OF DYNAMIC OPTIMIZATION
ALGORITHMS
QUANTITATIVE PERFORMANCE MEASURES FOR DYNAMIC OPTIMIZATION PROBLEMS
DYNAMIC FUNCTION OPTIMIZATION: THE MOVING PEAKS BENCHMARK
SRCS: A TECHNIQUE FOR COMPARING MULTIPLE ALGORITHMS UNDER SEVERAL
FACTORS IN DYNAMIC OPTIMIZATION PROBLEMS
DYNAMIC COMBINATORIAL OPTIMIZATION PROBLEMS: A FITNESS LANDSCAPE
ANALYSIS
TWO APPROACHES FOR SINGLE AND MULTI-OBJECTIVE DYNAMIC OPTIMIZATION
SELF-ADAPTIVE DIFFERENTIAL EVOLUTION FOR DYNAMIC ENVIRONMENTS WITH
FLUCTUATING NUMBERS OF OPTIMA
DYNAMIC MULTI-OBJECTIVE OPTIMIZATION USING PSO.
DIESES SCHRIFTSTUECK WURDE MASCHINELL ERZEUGT.
METAHEURISTICS FOR DYNAMIC OPTIMIZATION
/
: 2013
ABSTRACT / INHALTSTEXT
THIS BOOK IS AN UPDATED EFFORT IN SUMMARIZING THE TRENDING TOPICS AND
NEW HOT RESEARCH LINES IN SOLVING DYNAMIC PROBLEMS USING METAHEURISTICS.
AN ANALYSIS OF THE PRESENT STATE IN SOLVING COMPLEX PROBLEMS QUICKLY
DRAWS A CLEAR PICTURE: PROBLEMS THAT CHANGE IN TIME, HAVING NOISE AND
UNCERTAINTIES IN THEIR DEFINITION ARE BECOMING VERY IMPORTANT. THE TOOLS
TO FACE THESE PROBLEMS ARE STILL TO BE BUILT, SINCE EXISTING TECHNIQUES
ARE EITHER SLOW OR INEFFICIENT IN TRACKING THE MANY GLOBAL OPTIMA THAT
THOSE PROBLEMS ARE PRESENTING TO THE SOLVER TECHNIQUE. THUS, THIS BOOK
IS DEVOTED TO INCLUDE SEVERAL OF THE MOST IMPORTANT ADVANCES IN SOLVING
DYNAMIC PROBLEMS. METAHEURISTICS ARE THE MORE POPULAR TOOLS TO THIS END,
AND THEN WE CAN FIND IN THE BOOK HOW TO BEST USE GENETIC ALGORITHMS,
PARTICLE SWARM, ANT COLONIES, IMMUNE SYSTEMS, VARIABLE NEIGHBORHOOD
SEARCH, AND MANY OTHER BIOINSPIRED TECHNIQUES. ALSO, NEURAL NETWORK
SOLUTIONS ARE CONSIDERED IN THIS BOOK. BOTH, THEORY AND PRACTICE HAVE
BEEN ADDRESSED IN THE CHAPTERS OF THE BOOK. MATHEMATICAL BACKGROUND AND
METHODOLOGICAL TOOLS IN SOLVING THIS NEW CLASS OF PROBLEMS AND
APPLICATIONS ARE INCLUDED. FROM THE APPLICATIONS POINT OF VIEW, NOT JUST
ACADEMIC BENCHMARKS ARE DEALT WITH, BUT ALSO REAL WORLD APPLICATIONS IN
LOGISTICS AND BIOINFORMATICS ARE DISCUSSED HERE. THE BOOK THEN COVERS
THEORY AND PRACTICE, AS WELL AS DISCRETE VERSUS CONTINUOUS DYNAMIC
OPTIMIZATION, IN THE AIM OF CREATING A FRESH AND COMPREHENSIVE VOLUME.
THIS BOOK IS TARGETED TO EITHER BEGINNERS AND EXPERIENCED PRACTITIONERS
IN DYNAMIC OPTIMIZATION, SINCE WE TOOK CARE OF DEVISING THE CHAPTERS
IN A WAY THAT A WIDE AUDIENCE COULD PROFIT FROM ITS CONTENTS. WE HOPE TO
OFFER A SINGLE SOURCE FOR UP-TO-DATE INFORMATION IN DYNAMIC
OPTIMIZATION, AN INSPIRING AND ATTRACTIVE NEW RESEARCH DOMAIN THAT
APPEARED IN THESE LAST YEARS AND IS HERE TO STAY
DIESES SCHRIFTSTUECK WURDE MASCHINELL ERZEUGT.
|
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indexdate | 2024-08-01T16:14:51Z |
institution | BVB |
isbn | 9783642306655 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-025862032 |
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publisher | Springer |
record_format | marc |
series | Studies in computational intelligence |
series2 | Studies in computational intelligence |
spellingShingle | Metaheuristics for dynamic optimization Studies in computational intelligence Ingenieurwissenschaften Künstliche Intelligenz Engineering Artificial intelligence Metaheuristik (DE-588)4820176-5 gnd Dynamische Optimierung (DE-588)4125677-3 gnd |
subject_GND | (DE-588)4820176-5 (DE-588)4125677-3 |
title | Metaheuristics for dynamic optimization |
title_auth | Metaheuristics for dynamic optimization |
title_exact_search | Metaheuristics for dynamic optimization |
title_full | Metaheuristics for dynamic optimization Enrique Alba ... (eds.) |
title_fullStr | Metaheuristics for dynamic optimization Enrique Alba ... (eds.) |
title_full_unstemmed | Metaheuristics for dynamic optimization Enrique Alba ... (eds.) |
title_short | Metaheuristics for dynamic optimization |
title_sort | metaheuristics for dynamic optimization |
topic | Ingenieurwissenschaften Künstliche Intelligenz Engineering Artificial intelligence Metaheuristik (DE-588)4820176-5 gnd Dynamische Optimierung (DE-588)4125677-3 gnd |
topic_facet | Ingenieurwissenschaften Künstliche Intelligenz Engineering Artificial intelligence Metaheuristik Dynamische Optimierung |
url | https://doi.org/10.1007/978-3-642-30665-5 http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=025862032&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=025862032&sequence=000003&line_number=0002&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV020822171 |
work_keys_str_mv | AT albaenrique metaheuristicsfordynamicoptimization |