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A novel immune danger algorithm for constrained multiobjective optimization

机译:约束多目标优化的新型免疫危险算法

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A new immune optimization algorithm for constrained multiobjective optimization problems is designed based on danger theory exhibited in biological immune system. The general situation and running mechanism are presented in this paper. The algorithm identifies “dangerous” as the core idea and introduces antigen presenting cell and different danger signals. Experimental results of constrained multiobjective optimization show that the new algorithm has higher efficiency than traditional immune algorithms.
机译:基于生物免疫系统中展示的危险理论,设计了一种新的针对约束多目标优化问题的免疫优化算法。介绍了一般情况和运行机理。该算法将“危险”识别为核心思想,并引入抗原呈递细胞和不同的危险信号。约束多目标优化的实验结果表明,该算法比传统的免疫算法具有更高的效率。

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