一层光传输网络节点硬件模块优化规划

G. Shen, Limei Peng, Yunfeng Shen, H. Sardesai
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引用次数: 12

摘要

流量疏导的研究大多集中在最小化网络链路容量和提供客户服务与链路容量之间的服务关系。在此步骤之后,重要的是计划在客户端服务端口上添加/删除客户端服务,并在网络端口上设置端到端光路,然而很少调查。我们称这种努力为节点硬件模块规划。由于硬件模块是网络中最昂贵的组件,因此这是一个工业上的实际问题,其目的是最小化节点硬件成本。基于基于链路的流量梳理结果,提供了节点事件的端到端容量单元以及客户端服务和容量单元之间的聚合关系的信息,我们开发了一个整数线性规划(ILP)模型来优化规划硬件模块。为了克服ILP模型在大规模规划场景下的计算困难,我们还开发了一种快速的次优启发式硬件模块规划方法。仿真研究表明,启发式算法可以有效地实现接近于由ILP模型得到的最优解的设计。同时,对交换背板尺寸影响的评估表明,给定一组网络模块,存在一个最优交换背板尺寸,使硬件成本最低。
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Optimal node hardware module planning for layer-one Optical Transport Networks
Most of the studies on traffic grooming focus on minimizing network link capacity and providing serving-relationship between client services and link capacity. Subsequent to this step, it is important to plan for adding/dropping client services over client service ports and setting up end-to-end lightpaths over network ports, which is however seldom investigated. We call such effort node hardware module planning. This is an industrially practical problem aiming to minimize node hardware cost since hardware modules are the most expensive components in a network. Based on a link-based traffic grooming result that provides information on end-to-end capacity units incident to nodes and aggregation relationship between client services and capacity units, we develop an Integer Linear Programming (ILP) model to optimally plan hardware modules. To overcome the computation difficulty of the ILP model under large-sized planning scenarios, we also develop a fast sub-optimal heuristic for hardware module planning. Simulation studies indicate that the heuristic is efficient to achieve a design close to an optimal solution obtained by the ILP model. Also, the evaluation of the impact of switch backplane size shows that given a certain set of network modules, an optimal switch backplane size exists, which achieves the lowest hardware cost.
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