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Architectural, system level and protocol level techniques for power optimization for networked embedded systems

机译:网络嵌入式系统电力优化的架构,系统级和协议级技术

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Summary form only given. Dynamic power management (DPM) entails employing strategies that yield acceptable trade-off between power/energy usage and their performance penalties. These include heuristic shutdown policies, prediction-based shutdown policies, multiple voltage scaling and stochastic modeling based policy optimization. On the other hand, architectural techniques for power savings include application specific techniques for multi-media hardware systems, and generic techniques like clock gating, on-line profiling based monitoring and control etc. Other paradigms of architectures such as network on chip (NoCs) target power optimization as well. Protocol level power optimization methods include generic techniques employed in wireless standard protocols, as well as techniques specific to multi-media traffic. DPM strategies get increasingly sophisticated due to improved power manageability of hardware components. In this context, there is a positive feedback in action. Power management techniques show the potential for power savings, and this pushes hardware developers to support more advanced (finer grained and lower overhead) power management modes. In this tutorial, we provide an overview of three main issues in three segments, namely, architecture level, system level and protocol level techniques of power minimization and management, how they influence each other. However, we do not concentrate on low power VLSI techniques.
机译:摘要表格仅给出。动态电源管理(DPM)需要在权力/能源使用情况和其绩效处罚之间使用产生可接受的权衡的策略。这些包括启发式关闭策略,基于预测的关机策略,基于多个电压缩放和基于随机建模的基于策略优化。另一方面,节能的架构技术包括用于多媒体硬件系统的应用特定技术,以及时钟门控等通用技术,基于在线分析的监视和控制等。诸如芯片上的网络(NOC)等架构的其他范式目标功率优化也是如此。协议级功率优化方法包括在无线标准协议中采用的通用技术,以及特定于多媒体流量的技术。由于硬件组件的功率可管理性,DPM策略越来越复杂。在这方面,在行动中存在积极的反馈。电源管理技术显示了省电的潜力,这会推动硬件开发人员支持更先进的(更精细的粗糙和较低的开销)电源管理模式。在本教程中,我们在三个段中的三个主要问题概述,即功率最小化和管理的体系结构级,系统级别和协议级别技术,它们如何相互影响。但是,我们不专注于低功耗VLSI技术。

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