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Multiple Criteria Performance Analysis of Non-dominated Sets Obtained by Multi-objective Evolutionary Algorithms for Optimisation

机译:多目标进化算法获得非支配集的多准则性能分析

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The paper shows the importance of a multi-criteria performance analysis in evaluating the quality of non-dominated sets. The sets are generated by the use of evolutionary algorithms, more specifically through SPEA2 or NSGA-II. Problem examples from different problem domains are analyzed on four criteria of quality. These four criteria namely cardinality of the non-dominated set, spread of the solutions, hyper-volume, and set coverage do not favour any algorithm along the problem examples. In the Multiple Shortest Path Problem (MSPP) examples, the spread of solutions is the decisive factor for the 2SI1M configuration, and the cardinality and set coverage for the 3S configuration. The differences in set coverage values between SPEA2 and NSGA-II in the MSPP are small since both algorithms have almost identical non-dominated solutions. In the Decision Tree examples, the decisive factors are set coverage and hyper-volume. The computations show that the decisive criterion or criteria vary in all examples except for the set coverage criterion. This shows the importance of a binary measure in evaluating the quality of non-dominated sets, as the measure itself tests for dominance. The various criteria are confronted by means of a multi-criteria decision tool.
机译:本文显示了在评估非主导集合的质量时进行多标准性能分析的重要性。这些集合是通过使用进化算法(更具体地说是通过SPEA2或NSGA-II)生成的。根据四个质量标准分析了来自不同问题领域的问题示例。这四个标准,即非支配集的基数,解的散布,超量和集覆盖率,都不适合问题示例中的任何算法。在多条最短路径问题(MSPP)示例中,解决方案的扩散是2SI1M配置的决定性因素,也是3S配置的基数和设置覆盖率的决定性因素。 MSPP中SPEA2和NSGA-II之间的设置覆盖率值差异很小,因为这两种算法都具有几乎相同的非支配解。在决策树示例中,决定性因素是设置覆盖率和超量。计算表明,除设置的覆盖标准外,所有示例中的一个或多个决定性标准均会有所不同。这显示了二元测度在评估非支配集合的质量中的重要性,因为该测验本身就测试了优势。各种标准通过多标准决策工具来应对。

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