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Segment Routing (SR) provides Traffic Engineering (TE) with the ability of explicit path control by steering traffic passing through specific SR routers along a desired path. However, large-scale migration from a legacy IP network to a full SR-enabled one requires prohibitive hardware replacement and software update. Therefore, network operators prefer to upgrade a subset of IP routers into SR routers during a transitional period. This paper proposes SmartTE to optimize TE performance in hybrid IP/SR networks where partially deployed SR routers coexist with legacy IP routers. We use two centrality criteria in graph theory to decide which IP routers should be upgraded into SR routers under a given upgrading ratio. SmartTE leverages Deep Reinforcement Learning (DRL) to infer the optimal traffic splitting ratio across multiple pre-defined paths between source-destination pairs. Extensive experimental results with real-world topologies show that SmartTE outperforms other baseline TE solutions in minimizing the maximum link utilization and achieves comparable performance as a full SR network by upgrading only 30% IP routers.
机译:段路由(SR)提供流量工程(TE),通过沿着所需路径通过特定的SR路由器传输流量来提供显式路径控制的能力。但是,从旧版IP网络到完整的SR启用的大规模迁移需要禁止硬件替换和软件更新。因此,网络运营商更喜欢在过渡时段期间将IP路由器的子集升级到SR路由器中。本文提出了Smartte在混合IP / SR网络中优化TE性能,其中部分部署的SR路由器与传统IP路由器共存。我们使用图形理论中的两个中心标准来确定应根据给定的升级比率升级到SR路由器中的IP路由器。 Smartte利用深度加强学习(DRL)来推断源目的地对之间的多个预定路径的最佳流量分割比率。具有现实世界拓扑的广泛实验结果表明,Smartte在最大限度地降低最大的链路利用率时表现出其他基线TE解决方案,通过升级仅为30%IP路由器来实现作为完整SR网络的可比性性能。

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