首页> 外文会议>Real-Time Systems Symposium, 2001. (RTSS 2001). Proceedings. 22nd IEEE >Adaptive power-fidelity in energy-aware wireless embedded systems
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Adaptive power-fidelity in energy-aware wireless embedded systems

机译:能量感知型无线嵌入式系统中的自适应功率保真度

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Energy aware system operation, and not just low power hardware, is an important requirement for wireless embedded systems. These systems, such as wireless multimedia terminals or wireless sensor nodes, combine (soft) real-time constraints on computation and communication with requirements of long battery lifetime. In this paper, we present an OS-directed dynamic power management technique for such systems that goes beyond conventional techniques to provide an adaptive power vs. fidelity trade-off. The ability of wireless systems to adapt to changing fidelity in the form of data losses and errors is used to tradeoff against energy consumption. We also exploit system workload variation to proactively manage energy resources by predicting processing requirements. The supply voltage, and clock frequency are set according to predicted computation requirements of a specific task instance, and an adaptive feedback control machanism is used to keep system fidelity (deadline misses) within specifications. We present the theoretical framework underlying our approach in the context of both a static priority-based preemptive task scheduler as well as a dynamic priority based one, and present simulation-based performance analysis that shows that our technique provides large energy savings (up to 76%) with little loss in fidelity (>4%). Further, we describe the implementation of our technique in the eCos real-time operating system (RTOS) running on a StrongARM processor to illustrate the issues involved in enhancing RTOSs for energy awareness.
机译:具有能源意识的系统操作,而不仅仅是低功耗硬件,是无线嵌入式系统的一项重要要求。这些系统,例如无线多媒体终端或无线传感器节点,结合了对计算和通信的(软)实时约束,并具有较长的电池寿命。在本文中,我们提出了一种针对此类系统的面向OS的动态电源管理技术,该技术超越了传统技术,可提供自适应功率与保真度之间的权衡。无线系统以数据丢失和错误的形式适应变化的保真度的能力用于权衡能耗。我们还利用系统工作负载变化来通过预测处理需求来主动管理能源。根据特定任务实例的预测计算要求设置电源电压和时钟频率,并使用自适应反馈控制机制将系统保真度(截止期限未命中)保持在规格范围内。我们在基于静态优先级的抢占式任务调度程序和基于动态优先级的调度程序的背景下,提出了基于该方法的理论框架,并提出了基于仿真的性能分析,表明我们的技术可节省大量能源(多达76个) %),保真度损失很少(> 4%)。此外,我们在StrongARM处理器上运行的eCos实时操作系统(RTOS)中描述了我们的技术的实现,以说明为增强能源意识而增强RTOS所涉及的问题。

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