基于混合种群的RPR负载平衡增量学习算法

A. Bernardino, E. Bernardino, J. M. Sánchez-Pérez, J. Gómez-Pulido, M. A. Vega-Rodríguez
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引用次数: 1

摘要

如果管理得当,环形网络非常适合以可靠和廉价的方式提供大量带宽。最佳负载平衡非常重要,因为它可以增加系统容量并改善环的整体性能。在这种情况下,一个重要的优化问题是加权环弧加载问题(WRALP)。它包括在通信网络中为每个请求设计一条传输路径(直接路径),从而避免环弧上的高负载。WRALP要求一种路由方案,使环弧上的最大负载最小。本文研究了不存在需求分割的WRALP问题,并提出了一种基于混合种群的增量学习方法来解决该问题。我们的研究表明,HPBIL能够得到很好的解决方案,改善了以前的方法所得到的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Hybrid Population-Based Incremental Learning algorithm for load balancing in RPR
When managed properly, the ring networks are uniquely suited to deliver a large amount of bandwidth in a reliable and inexpensive way. An optimal load balancing is very important, because it increases the system capacity and improves the overall ring performance. An important optimisation problem in this context is the Weighted Ring Arc Loading Problem (WRALP). It consists of the design, in a communication network of a transmission route (direct path) for each request, such that high load on the ring arcs will be avoided. WRALP asks for a routing scheme such that the maximum load on the ring arcs will be minimum. In this paper we study WRALP without demand splitting and we propose a Hybrid Population-based Incremental Learning (HPBIL) to solve it. We show that HPBIL is able to achieve good solutions, improving the results obtained by previous approaches.
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