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Titlebook: Evolutionary Algorithms in Engineering Applications; Dipankar Dasgupta,Zbigniew Michalewicz Book 1997 Springer-Verlag Berlin Heidelberg 19

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application areas in different fields of engineering. Each chapter can be used for self-study or as a reference by practitioners to help them apply evolutionary algorithms to problems in their engineering domains.978-3-642-08282-5978-3-662-03423-1
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https://doi.org/10.1007/978-3-658-27039-1lso serve as the initial points for more traditional gradient methods. The experiments indicate that the proposed method has the potential to solve a wide range of inverse structural identification problems in a systematic and robust way.
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https://doi.org/10.1007/978-3-658-05203-4workstation for incorporation into the genetic algorithm. Using this approach, we are able to automatically generate new scheduling algorithms in a relatively short period of time that produce good performance when subsequently executing similar types of parallel application programs on a shared-memory multiprocessor system.
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Interdisziplinäre Diskursforschungt space. We present experimental results on a series of artificial problems of varying complexity. PLEASE performs competitively with several nearest neighbor classification algorithms and C4.5 on the problem set.We provide an analysis of the strengths and weaknesses of the current system.
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Evolutionary Algorithms — An Overvieweering for solving complex problems. An important goal of research on evolutionary algorithms is to understand the class of problems for which EAs are most suited, and, in particular, the class of problems on which they outperform other search algorithms.
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Flaw Detection and Configuration with Genetic Algorithmslso serve as the initial points for more traditional gradient methods. The experiments indicate that the proposed method has the potential to solve a wide range of inverse structural identification problems in a systematic and robust way.
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Prototype Based Supervised Concept Learning Using Genetic Algorithmst space. We present experimental results on a series of artificial problems of varying complexity. PLEASE performs competitively with several nearest neighbor classification algorithms and C4.5 on the problem set.We provide an analysis of the strengths and weaknesses of the current system.
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