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An improved firefly algorithm for solving dynamic multidimensional knapsack problems

机译:求解动态多维背包问题的改进萤火虫算法

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摘要

There is a wide range of publications reported in the literature, considering optimization problems where the entire problem related data remains stationary throughout optimization. However, most of the real-life problems have indeed a dynamic nature arising from the uncertainty of future events. Optimization in dynamic environments is a relatively new and hot research area and has attracted notable attention of the researchers in the past decade. Firefly Algorithm (FA), Genetic Algorithm (GA) and Differential Evolution (DE) have been widely used for static optimization problems, but the applications of those algorithms in dynamic environments are relatively lacking. In the present study, an effective FA introducing diversity with partial random restarts and with an adaptive move procedure is developed and proposed for solving dynamic multidimensional knapsack problems. To the best of our knowledge this paper constitutes the first study on the performance of FA on a dynamic combinatorial problem. In order to evaluate the performance of the proposed algorithm the same problem is also modeled and solved by GA, DE and original FA. Based on the computational results and convergence capabilities we concluded that improved FA is a very powerful algorithm for solving the multidimensional knapsack problems for both static and dynamic environments.
机译:考虑到优化问题,文献中报道了许多出版物,其中与整个问题相关的数据在整个优化过程中保持不变。但是,大多数现实生活中的问题确实具有动态性,这是由未来事件的不确定性引起的。动态环境中的优化是一个相对较新的研究热点,并且在过去十年中引起了研究人员的显着关注。萤火虫算法(FA),遗传算法(GA)和差异进化(DE)已广泛用于静态优化问题,但是相对缺乏这些算法在动态环境中的应用。在本研究中,提出并提出了一种有效的FA,该FA引入具有部分随机重启和自适应移动过程的多样性,以解决动态多维背包问题。据我们所知,本文构成了FA在动态组合问题上的性能的第一项研究。为了评估所提出算法的性能,还使用GA,DE和原始FA对相同问题进行了建模和求解。根据计算结果和收敛能力,我们得出结论,改进的FA是解决静态和动态环境中多维背包问题的一种非常强大的算法。

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