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Improving Vector Evaluated Particle Swarm Optimisation by Incorporating Nondominated Solutions

机译:通过合并非支配解来改进矢量评估的粒子群算法

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摘要

The Vector Evaluated Particle Swarm Optimisation algorithm is widely used to solve multiobjective optimisation problems. This algorithm optimises one objective using a swarm of particles where their movements are guided by the best solution found by another swarm. However, the best solution of a swarm is only updated when a newly generated solution has better fitness than the best solution at the objective function optimised by that swarm, yielding poor solutions for the multiobjective optimisation problems. Thus, an improved Vector Evaluated Particle Swarm Optimisation algorithm is introduced by incorporating the nondominated solutions as the guidance for a swarm rather than using the best solution from another swarm. In this paper, the performance of improved Vector Evaluated Particle Swarm Optimisation algorithm is investigated using performance measures such as the number of nondominated solutions found, the generational distance, the spread, and the hypervolume. The results suggest that the improved Vector Evaluated Particle Swarm Optimisation algorithm has impressive performance compared with the conventional Vector Evaluated Particle Swarm Optimisation algorithm.
机译:向量评估粒子群优化算法被广泛用于解决多目标优化问题。该算法使用一大群粒子来优化一个目标,其中粒子的运动由另一群粒子找到的最佳解决方案来指导。但是,仅当新生成的解决方案比该群体优化的目标函数的最佳解决方案具有更好的适应性时,才更新群体的最佳解决方案,从而产生多目标优化问题的较差解决方案。因此,通过合并非支配解作为群的指导,而不是使用另一个群的最佳解,引入了一种改进的矢量评估粒子群优化算法。在本文中,使用诸如发现的非支配解的数量,世代距离,扩散和超体积之类的性能度量来研究改进的矢量评估粒子群优化算法的性能。结果表明,与传统的矢量评估粒子群优化算法相比,改进的矢量评估粒子群优化算法具有令人印象深刻的性能。

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