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Improving the energy efficiency of a microcontroller instruction fetch using tight loop cache

机译:使用紧密循环缓存提高微控制器指令获取的能源效率

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摘要

Recently there has been a lot of effort in making the Internet of Things (IoT) a reality. A central component of this vision is to make low power edge sensor nodes (i.e., nodes with few connections that are not used to route data) in a mesh network. Such systems are often composed of a low power microcontroller coupled with a low power radio operating at low speeds with long duty cycles. A lot of research has been conducted with regards to reducing the power consumption of these systems.A significant portion of the energy is used for fetching instructions from flash. In some low-power microcontrollers a small cache is used to exploit temporal locality in the instruction stream. Energy is saved, because SRAM used in caches require less energy than flash.Cache is a very old and well known technique to exploit such differentials in speed/energy. This masters thesis will build on the tight loop cache approach, use software simulations to evaluate if it can be used in an application to save energy, proceed to its hardware design and implementation and compare results.Master thesis was a collaboration between the CARD group and Silicon Labs, where Marius Grannæs was a co-supervisor.
机译:最近,在使物联网(IoT)成为现实方面已经付出了很多努力。该构想的核心部分是在网状网络中制造低功率边缘传感器节点(即连接很少的节点,这些节点不用于路由数据)。这样的系统通常由低功率微控制器和低功率无线电装置组成,低功率无线电装置以低速,长占空比运行。为了减少这些系统的功耗,已经进行了很多研究。很大一部分能量用于从闪存中获取指令。在某些低功耗微控制器中,小型缓存用于利用指令流中的时间局部性。节能是因为缓存中使用的SRAM比闪存所需的能量更少。缓存是一种非常古老且众所周知的技术,可以利用这种速度/能量差异。该硕士学位论文将基于紧密循环缓存方法,使用软件仿真来评估它是否可以在应用程序中使用以节省能源,着手进行其硬件设计和实现并比较结果。由MariusGrannæs担任联合主管的Silicon Labs。

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    Popovic Maja;

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