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Assured end-to-end QoS through adaptive marking in multi-domain differentiated services networks

机译:通过自适应标记在多域差异化服务网络中确保端到端QoS

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摘要

The issue of resource management in multi-domain Differentiated Services (DiffServ) networks has attracted a lot of attention from researchers who have proposed various provisioning, adaptive marking and admission control schemes. In this paper, we propose a Reinforcement Learning-based Adaptive Marking (RLAM) approach for providing assured end-to-end quality of service (QoS) in the form of end-to-end delay and throughput assurances, while minimizing packet transmission cost since 'expensive' Per Hop Behaviors like Expedited Forwarding (EF) are used only when necessary. The proposed scheme tries to satisfy per flow end-to-end QoS through control action,s which act on flow aggregates in the core of the network. Using an ns2 simulation of a multi-domain DiffServ network with multimedia traffic, the RLAM scheme is shown to be effective in significantly lowering packet transmission costs without sacrificing end-to-end QoS, when compared to the commonly used static marking scheme.
机译:多域区分服务(DiffServ)网络中的资源管理问题引起了研究人员的广泛关注,他们提出了各种配置,自适应标记和接纳控制方案。在本文中,我们提出了一种基于强化学习的自适应标记(RLAM)方法,以端到端延迟和吞吐量保证的形式提供有保证的端到端服务质量(QoS),同时将数据包传输成本降至最低因为仅在必要时才使用“昂贵”的每跳行为,例如快速转发(EF)。所提出的方案试图通过控制动作来满足每个流的端到端QoS,这些动作作用于网络核心中的流聚合。通过使用具有多媒体流量的多域DiffServ网络的ns2仿真,与常用的静态标记方案相比,RLAM方案可有效降低分组传输成本,而又不牺牲端到端QoS。

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