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The Parameter Estimation and Statistical Analysis of Constraint Optimization Penalty Function that Solved by Particle Swarm Optimization

机译:通过粒子群优化解决的约束优化惩罚函数的参数估计与统计分析

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Particle swarm optimization has been successfully applied to optimization, however it was not effective on all of the constraint functions. This paper has validated it through five measures and analyzed the result of test function. From the result we could find out which was the best one or which was the worst one, then we use four methods of Punishment strategy function and each of them was tested by four particle swarm optimization so that we could know which one is the best to be combined with particle swarm optimization, and it will be explained theoretically.
机译:粒子群优化已成功应用于优化,但是它对所有约束函数无效。本文通过五项措施验证了它,并分析了测试功能的结果。从结果来看,我们可以发现哪一个是最好的或者是最糟糕的一个,然后我们使用四种惩罚策略函数的方法,每一个都经过四个粒子群优化测试,以便我们知道哪一个是最好的与粒子群优化结合,理论上将解释。

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