Determining Application-Specific Peak Power and Energy Requirements for Ultra-Low-Power Processors

Hari Cherupalli, Henry Duwe, Weidong Ye, Rakesh Kumar, J. Sartori
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引用次数: 7

Abstract

Many emerging applications such as the Internet of Things, wearables, implantables, and sensor networks are constrained by power and energy. These applications rely on ultra-low-power processors that have rapidly become the most abundant type of processor manufactured today. In the ultra-low-power embedded systems used by these applications, peak power and energy requirements are the primary factors that determine critical system characteristics, such as size, weight, cost, and lifetime. While the power and energy requirements of these systems tend to be application specific, conventional techniques for rating peak power and energy cannot accurately bound the power and energy requirements of an application running on a processor, leading to overprovisioning that increases system size and weight. In this article, we present an automated technique that performs hardware–software coanalysis of the application and ultra-low-power processor in an embedded system to determine application-specific peak power and energy requirements. Our technique provides more accurate, tighter bounds than conventional techniques for determining peak power and energy requirements. Also, unlike conventional approaches, our technique reports guaranteed bounds on peak power and energy independent of an application’s input set. Tighter bounds on peak power and energy can be exploited to reduce system size, weight, and cost.
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确定超低功耗处理器的特定应用峰值功率和能量需求
许多新兴应用,如物联网、可穿戴设备、可植入设备和传感器网络,都受到电力和能源的限制。这些应用依赖于超低功耗处理器,超低功耗处理器已迅速成为当今制造的最丰富的处理器类型。在这些应用使用的超低功耗嵌入式系统中,峰值功率和能量需求是决定关键系统特性(如尺寸、重量、成本和使用寿命)的主要因素。虽然这些系统的功率和能量需求往往是特定于应用程序的,但用于评估峰值功率和能量的传统技术不能准确地限定在处理器上运行的应用程序的功率和能量需求,从而导致过度供应,从而增加系统尺寸和重量。在本文中,我们介绍了一种自动化技术,该技术可以对嵌入式系统中的应用程序和超低功耗处理器进行硬件-软件协同分析,以确定特定于应用程序的峰值功率和能量需求。我们的技术提供了比传统技术更准确,更严格的界限,以确定峰值功率和能量需求。此外,与传统方法不同,我们的技术报告了与应用程序输入集无关的峰值功率和能量的保证界限。可以利用更严格的峰值功率和能量限制来减小系统尺寸、重量和成本。
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