Evolutionary statistical procedures : an evolutionary computation approach to statistical procedures designs and applications

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 i...

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Autors principals: Baragona, Roberto, Battaglia, Francesco (Autor), Poli, Irene (Autor)
Format: Livre numérique
Idioma:Anglais
Publicat: Berlin, Heidelberg : Springer Berlin Heidelberg : Springer e-books [20..].
Cham : Springer Nature
Col·lecció:Statistics and Computing
Matèries:
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Accès Université d'Orléans
Accès INSA CVL
Nota: Description d'après consultation du 18 février 2013
Archives Springer e-books (Licence nationale)
Archives Springer e-books (Licence nationale)
Autres localisations: Voir dans le Sudoc
Edition sous un autre format:• Evolutionary statistical procedures, an evolutionary computation approach to statistical procedures designs and applications, Roberto Baragona, Francesco Battaglia, Irene Poli, Berlin, Springer, 2011, 1 vol. (XI-276 p.), Statistics and computing, 978-3-642-16217-6
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505 1 |a Introduction Evolutionary Computation Evolving Regression Models Time Series Linear and Nonlinear Models Design of Experiments Outliers Cluster Analysis 
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520 |a 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 
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