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On the Performance of Linear Decreasing Inertia Weight Particle Swarm Optimization for Global Optimization

机译:关于线性降低惯性粒子群优化对全局优化的性能

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Linear decreasing inertia weight (LDIW) strategy was introduced to improve on the performance of the original particle swarm optimization (PSO). However, linear decreasing inertia weight PSO (LDIW-PSO) algorithm is known to have the shortcoming of premature convergence in solving complex (multipeak) optimization problems due to lack of enough momentum for particles to do exploitation as the algorithm approaches its terminal point. Researchers have tried to address this shortcoming by modifying LDIW-PSO or proposing new PSO variants. Some of these variants have been claimed to outperform LDIW-PSO. The major goal of this paper is to experimentally establish the fact that LDIW-PSO is very much efficient if its parameters are properly set. First, an experiment was conducted to acquire a percentage value of the search space limits to compute the particle velocity limits in LDIW-PSO based on commonly used benchmark global optimization problems. Second, using the experimentally obtained values, five well-known benchmark optimization problems were used to show the outstanding performance of LDIW-PSO over some of its competitors which have in the past claimed superiority over it. Two other recent PSO variants with different inertia weight strategies were also compared with LDIW-PSO with the latter outperforming both in the simulation experiments conducted.
机译:引入线性降低惯性重量(LDIW)策略以提高原始粒子群优化(PSO)的性能。然而,已知线性降低惯性PECO(LDIW-PSO)算法在解决复杂(Multipak)优化问题时具有早期收敛性的缺点,因为算法在算法接近其终点时缺乏足够的粒子动量。研究人员试图通过修改LDIW-PSO或提出新的PSO变体来解决这种缺点。已经要求一些这些变体突出显示LDIW-PSO。本文的主要目标是通过实际确定LDIW-PSO非常有效,如果其参数正确设置。首先,进行实验以获取搜索空间限制的百分比值,以基于常用的基准全局优化问题计算LDIW-PSO中的粒子速度限制。其次,使用实验获得的值,五个着名的基准优化问题用于显示LDIW-PSO对其过去的一些竞争对手的优异表现,这些竞争对手在过去索取的优势。另外两种具有不同惯性体重策略的PSO变体也与LDIW-PSO相比,后者在进行的模拟实验中表现出来。

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