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A hybrid elitist pareto-based coordinate exchange algorithm for constructing multi-criteria optimal experimental designs

机译:基于混合精英的基于Pareto的坐标交换算法,用于构建多准则最优实验设计

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摘要

This paper presents a new Pareto-based coordinate exchange algorithm for populating or approximating the true Pareto front for multi-criteria optimal experimental design problems that arise naturally in a range of industrial applications. This heuristic combines an elitist-like operator inspired by evolutionary multi-objective optimization algorithms with a coordinate exchange operator that is commonly used to construct optimal designs. Benchmarking results from both a two-dimensional and three-dimensional example demonstrate that the proposed hybrid algorithm can generate highly reliable Pareto fronts with less computational effort than existing procedures in the statistics literature. The proposed algorithm also utilizes a multi-start operator, which makes it readily parallelizable for high performance computing infrastructures.
机译:本文提出了一种新的基于Pareto的坐标交换算法,用于填充或逼近真正的Pareto前沿,以解决在许多工业应用中自然产生的多准则最优实验设计问题。这种启发式方法将受进化多目标优化算法启发的类似精英主义的算子与通常用于构建最佳设计的坐标交换算子结合在一起。来自二维和三维示例的基准测试结果表明,与统计文献中的现有过程相比,所提出的混合算法可以用更少的计算量来生成高度可靠的Pareto前沿。所提出的算法还利用了多启动运算符,这使其易于为高性能计算基础架构并行化。

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