无线网络中传输级性能-能量权衡及其对系统级架构和设计范例的影响

B. Bougard, S. Pollin, G. Lenoir, L. Van der Perre, F. Catthoor, W. Dehaene
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引用次数: 6

摘要

为了在便携式设备(如PDA或智能电话)中部署宽带无线连接,低功耗是必不可少的。除了低功耗电路和架构设计之外,系统级电源管理是实现低功耗的关键技术。最近,“延迟调度”被提出用于系统级的功耗降低。它已被证明是非常有效的,并且是传统关井方法的补充。目前,主要从介质访问控制(MAC)层和数据链路控制(DLC)层进行分析。然而,无线电通信中有效的功率管理需要考虑端到端的跨层相互作用。本文从传输层的角度分析了“延迟调度”的含义。结果表明,排队延迟和物理层能量之间的关键权衡驱动了用户吞吐量和系统功率之间的全局权衡。建立了“延迟调度”有效的条件,并得出了有效的系统级架构和跨层电源管理的重要结论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transport level performance-energy trade-off in wireless networks and consequences on the system-level architecture and design paradigm
Low power consumption is imperative to enable the deployment of broadband wireless connectivity in portable devices such as PDA or smart telephones. Next to low power circuit and architecture design, system-level power management is revealed to be a key technology for low power consumption. Recently, "lazy scheduling" has been proposed for system level power reduction. It has been shown to be very effective and complementary to more traditional shutdown based approaches. So far, analysis has been carried out from the viewpoint of medium access control (MAC) and data link control (DLC) layers. Yet, effective power management in radio communication requires consideration of end-to-end cross-layer interactions. In this paper, we analyze the implication of "lazy scheduling" from the transport layer perspective. It is shown that a key trade-off between queuing delay and physical layer energy drives the global trade-off between user throughput and system power. Conditions under which "lazy scheduling" is efficient are established and important conclusions on effective system-level architecture and cross-layer power management are drawn.
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