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Evolutionary computation is a class of problem optimization methodology with the inspiration from the natural evolution of species. In nature, the population of a species evolves by means… Mehr…

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Evolutionary computation is a class of problem optimization methodology with the inspiration from the natural evolution of species. In nature, the population of a species evolves by means… Mehr…

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Shengxiang Yang; Yew Soon Ong; Yaochu Jin:
Evolutionary Computation in Dynamic and Uncertain Environments - neues Buch

2007, ISBN: 9783540497745

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Bibliographische Daten des bestpassenden Buches

Details zum Buch

Detailangaben zum Buch - Evolutionary Computation in Dynamic and Uncertain Environments


EAN (ISBN-13): 9783540497745
Erscheinungsjahr: 2007
Herausgeber: Springer Berlin

Buch in der Datenbank seit 2017-04-19T00:39:19+02:00 (Vienna)
Detailseite zuletzt geändert am 2024-04-03T09:11:08+02:00 (Vienna)
ISBN/EAN: 9783540497745

ISBN - alternative Schreibweisen:
978-3-540-49774-5
Alternative Schreibweisen und verwandte Suchbegriffe:
Titel des Buches: evolutionary environments


Daten vom Verlag:

Autor/in: Shengxiang Yang; Yew-Soon Ong; Yaochu Jin
Titel: Studies in Computational Intelligence; Evolutionary Computation in Dynamic and Uncertain Environments
Verlag: Springer; Springer Berlin
605 Seiten
Erscheinungsjahr: 2007-04-03
Berlin; Heidelberg; DE
Sprache: Englisch
213,99 € (DE)
220,00 € (AT)
236,00 CHF (CH)
Available
XXIII, 605 p.

EA; E107; eBook; Nonbooks, PBS / Technik/Allgemeines, Lexika; Mathematik für Ingenieure; Verstehen; algorithm; algorithms; artificial intelligence; data mining; evolution; evolutionary algorithm; evolutionary computation; evolutionary strategies; genetic algorithms; genetic programming; intelligence; modeling; neural networks; optimization; uncertainty; C; Mathematical and Computational Engineering Applications; Computational Intelligence; Artificial Intelligence; Statistics in Engineering, Physics, Computer Science, Chemistry and Earth Sciences; Engineering; Künstliche Intelligenz; Wahrscheinlichkeitsrechnung und Statistik; BB

Optimum Tracking in Dynamic Environments.- Explicit Memory Schemes for Evolutionary Algorithms in Dynamic Environments.- Particle Swarm Optimization in Dynamic Environments.- Evolution Strategies in Dynamic Environments.- Orthogonal Dynamic Hill Climbing Algorithm: ODHC.- Genetic Algorithms with Self-Organizing Behaviour in Dynamic Environments.- Learning and Anticipation in Online Dynamic Optimization.- Evolutionary Online Data Mining: An Investigation in a Dynamic Environment.- Adaptive Business Intelligence: Three Case Studies.- Evolutionary Algorithms for Combinatorial Problems in the Uncertain Environment of the Wireless Sensor Networks.- Approximation of Fitness Functions.- Individual-based Management of Meta-models for Evolutionary Optimization with Application to Three-Dimensional Blade Optimization.- Evolutionary Shape Optimization Using Gaussian Processes.- A Study of Techniques to Improve the Efficiency of a Multi-Objective Particle Swarm Optimizer.- An Evolutionary Multi-objective Adaptive Meta-modeling Procedure Using Artificial Neural Networks.- Surrogate Model-Based Optimization Framework: A Case Study in Aerospace Design.- Handling Noisy Fitness Functions.- Hierarchical Evolutionary Algorithms and Noise Compensation via Adaptation.- Evolving Multi Rover Systems in Dynamic and Noisy Environments.- A Memetic Algorithm Using a Trust-Region Derivative-Free Optimization with Quadratic Modelling for Optimization of Expensive and Noisy Black-box Functions.- Genetic Algorithm to Optimize Fitness Function with Sampling Error and its Application to Financial Optimization Problem.- Search for Robust Solutions.- Single/Multi-objective Inverse Robust Evolutionary Design Methodology in the Presence of Uncertainty.- Evolving the Tradeoffs between Pareto-Optimality andRobustness in Multi-Objective Evolutionary Algorithms.- Evolutionary Robust Design of Analog Filters Using Genetic Programming.- Robust Salting Route Optimization Using Evolutionary Algorithms.- An Evolutionary Approach For Robust Layout Synthesis of MEMS.- A Hybrid Approach Based on Evolutionary Strategies and Interval Arithmetic to Perform Robust Designs.- An Evolutionary Approach for Assessing the Degree of Robustness of Solutions to Multi-Objective Models.- Deterministic Robust Optimal Design Based on Standard Crowding Genetic Algorithm.
State of the art of evolutionary algorithms in dynamic and uncertain environments Includes supplementary material: sn.pub/extras

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