学习多域DWDM网络中的定价策略

Pasquale Gurzi, K. Steenhaut, A. Nowé, Peter Vrancx
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引用次数: 1

摘要

在今天的互联网中,路由的商业方面变得越来越重要。互联网服务提供商之间的商业协议(即传输和对等协议)影响域间路由策略,这些策略现在由货币方面以及全球资源和性能优化驱动。为了允许可伸缩性和保护业务关键拓扑信息,分层路由和拓扑聚合成为现代域间网络中的一个基本问题。在本文中,我们引入了一种定价机制,该机制考虑了负载依赖的内部成本对域收入的影响,并允许isp在拓扑聚合过程中设置链路价格。我们采用了一个连续动作强化学习自动机(Continuous Action Reinforcement Learning Automata, CARLA),作为ISP运营商根据网络状态学习最优价格的工具,在这个框架中运行。强化信号仅与领域的效用(即利润)成正比,因此不需要任何中央权威或领域之间的敏感信息交换。仿真结果表明,与静态选择链路价格的其他ISP相比,使用CARLA的ISP可以显著提高其效用。当两个isp使用相同的CARLA时,他们可以达到平衡策略,同时仍然提高他们的效用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Learning a pricing strategy in multi-domain DWDM networks
In today's Internet the commercial aspect of routing is gaining more and more importance. Commercial agreements between ISPs (i.e. transit and peering agreements) influence the inter-domain routing policies which are now driven by monetary aspects as well as global resource and performance optimization. To allow scalability and protect business critical topology information, hierarchical routing and topology aggregation became a fundamental issue in modern inter-domain networks. In this paper, we introduce a pricing mechanism that takes into account the effects of load dependent internal costs on the domain income and allows ISPs to set link prices during the topology aggregation process. We adapt a Continuous Action Reinforcement Learning Automata (CARLA), to operate in this framework as a tool used by ISP operators to learn the best price according to the network state. The reinforcement signal is proportional only to the domain's utility (i.e. profit) and thus does not need any central authority or sensitive information exchange among domains. Simulation results show that one ISP using CARLA can significantly improve its utility compared to other ISPs that statically choose their link prices. When two ISPs employ the same CARLA they can reach an equilibrium strategy while still improving their utilities.
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