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Titlebook: Evolutionary Multi-Criterion Optimization; 9th International Co Heike Trautmann,Günter Rudolph,Christian Grimme Conference proceedings 2017

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https://doi.org/10.1007/978-3-663-19760-7tion problems of discrete nature. This provides a more intuitive way to set the preferences, which represents a useful tool to explore the regions of interest of the decision maker. Numerical results on multi-objective multi-dimensional knapsack problem instances show the interest of the proposed ap
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Induktion durch abnorme Induktoren, authors counter this limitation, by integrating a termination criterion with an MOEA run, towards determining the appropriate timing for application of the machine learning based framework. Results based on three real-world many-objective problems considered in this paper, highlight the utility of
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https://doi.org/10.1007/978-3-319-54157-0big data; evolutionary algorithms; machine learning; numeric computing; parallel computing; algorithm ana
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978-3-319-54156-3Springer International Publishing AG 2017
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