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Guided Randomness in Optimization, Volume 1

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The performance of an algorithm used depends on the GNA. This book focuses on the comparison of optimizers, it defines a stress-outcome approach which can be derived all the classic criteria (median, average, etc.) and other more sophisticated. Source-codes used for the examples are also presented, this allows a reflection on the "superfluous chance," succinctly explaining why and how the stochastic aspect of optimization could be avoided in some cases.

316 pages, Kindle Edition

First published May 4, 2015

About the author

Maurice Clerc

16 books

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