基于模因算法的集中控制宽带无线网络优化

S. Horng, Feng-Yi Yang
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摘要

本文提出了一种能充分描述集中控制的宽带无线网络的有限k轮询系统。为了在有限的计算时间内获得足够好的解(k限阈值),提出了一种模因算法(MA)来求解k限轮询系统。该算法将全局搜索和局部搜索相结合,在求解空间中实现了探索和利用的平衡。首先,构建基于少量传输数据包的粗略评估来近似评估解决方案的性能。在全局搜索中,我们采用带有粗糙评价的实数编码遗传算法(GA),从巨大的解空间中选择N个大致好的解来构造所选子集。在局部搜索中,利用粗糙评价辅助的模拟退火算法搜索N个相邻的最优点,形成候选子集。最后,利用排序和选择(R&S)技术从候选子集的N个相邻最优解中选择最优解。至于最小化总预期等待和损失成本的平均性能,我们已经证明,我们的方法大大优于发达的服务学科。该方法得到了足够好的解,在解的质量和计算效率方面都是有希望的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of broadband wireless networks with centralized control using memetic algorithm
In this paper, a k-limited polling system enabling an adequate description of broadband wireless networks with centralized control is presented. A memetic algorithm (MA) is proposed to solve the k-limited polling system to obtain a good enough solution (k-limited threshold) using limited computation time. The proposed MA combines the global search and local search to achieve a balance between the exploration and exploitation in searching through the solution space. Firstly, a crude evaluation based on a small amount of transmitted packets is constructed to approximately evaluate the performance of a solution. In global search, we apply the real-coded genetic algorithm (GA) associated with crude evaluation to select N roughly good solutions from huge solution space to construct the selected subset. In local search, the simulated annealing (SA) assisted by crude evaluation is utilized to search for N neighboring optima to form the candidate subset. Finally, a ranking and selection (R&S) technique is used to select the best solution among the N neighboring optima in the candidate subset. As for the performance of minimizing the average of total expected waiting and loss cost, we have demonstrated that our approach drastically outperforms the developed service disciplines. The good enough solution obtained by our method is promising in the aspects of solution quality and computational efficiency.
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