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Predictive system shutdown and other architectural techniques for energy efficient programmable computation

机译:预测性系统关闭和其他架构技术,可实现高效节能的可编程计算

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摘要

With the popularity of portable devices such as personal digital assistants and personal communicators, as well as with increasing awareness of the economic and environmental costs of power consumption by desktop computers, energy efficiency has emerged as an important issue in the design of electronic systems. While power efficient ASIC's with dedicated architectures have addressed the energy efficiency issue for niche applications such as DSP, much of the computation continues to be implemented as software running on programmable processors such as microprocessors, microcontrollers, and programmable DSP's. Not only is this true for general purpose computation on personal computers and workstations, but also for portable devices, application-specific systems etc. In fact, firmware and embedded software executing on RISC and DSP processor cores that are embedded in ASIC's has emerged as a leading implementation methodology for speech coding, modem functionality, video compression, communication protocol processing etc. This paper describes architectural techniques for energy efficient implementation of programmable computation, particularly focussing on the computation needed in portable devices where event-driven user interfaces, communication protocols, and signal processing play a dominant role. Two key approaches described here are predictive system shutdown and extended voltage scaling. Results indicate that a large reduction in power consumption can be achieved over current day solutions with little or no loss in system performance.
机译:随着诸如个人数字助理和个人通信器之类的便携式设备的普及,以及对台式计算机功耗的经济和环境成本的日益增长的认识,能源效率已经成为电子系统设计中的重要问题。尽管具有专用架构的高能效ASIC解决了诸如DSP之类的利基应用的能效问题,但许多计算仍继续作为运行在可编程处理器(如微处理器,微控制器和可编程DSP)上的软件来实现。这不仅适用于个人计算机和工作站上的通用计算,而且适用于便携式设备,特定于应用程序的系统等。事实上,在嵌入式ASIC中嵌入在RISC和DSP处理器内核上执行的固件和嵌入式软件已成为一种趋势。语音编码,调制解调器功能,视频压缩,通信协议处理等方面的领先实现方法。本文介绍了可节能实现可编程计算的体系结构技术,尤其着重于事件驱动的用户界面,通信协议,信号处理起着主导作用。这里介绍的两个关键方法是预测性的系统关闭和扩展的电压调节。结果表明,与当今的解决方案相比,可以大幅降低功耗,而系统性能几乎没有损失。

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