Multi-objectivization in Evolutionary Algorithms - Darrell Lochtefeld - 書籍 - LAP LAMBERT Academic Publishing - 9783845428543 - 2011年8月4日
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Multi-objectivization in Evolutionary Algorithms


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Multi-objectivization is the process of reformulating a single-objective problem into a multi-objective problem and solving it with a multi-objective method in order to provide a solution to the original single-objective problem. This work investigates Evolutionary Algorithms (EAs) in both a general categorical sense and as they are applied to multi-objectivization. A diversity classification framework for EAs is proposed. Furthermore, multi-objectivization techniques are examined. Through study of an abstract problem, job-shop scheduling problems, and the Traveling Salesman Problem, principles governing the design decisions for multi-objectivization are identified. Two ways in which multi-objectivization creates beneficial search results are theorized. Prevalent multi-objectivization techniques are compared both analytically and through these experiments. A third, more general version of the studied techniques is proposed with results showing robust performance across a variety of computational budgets.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2011年8月4日
ISBN13 9783845428543
出版社 LAP LAMBERT Academic Publishing
ページ数 256
寸法 150 × 15 × 226 mm   ·   399 g
言語 ドイツ語