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Execution cache-based microarchitecture for power-efficient superscalar processors

机译:节能型超标量处理器的基于执行缓存的微体系结构

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This paper investigates a possible solution to the problem of power consumption in superscalar, out-of-order processors by proposing a new microarchitecture, specifically designed to reduce increasing power requirements of high-end processors. More precisely, we show that by modifying the well-established superscalar processor architecture, significant savings can be achieved in terms of power consumption. Our approach aims at limiting the growing amount of power used in a typical processor for dynamic optimizations (including out-of-order scheduling and register renaming). Our proposed approach achieves significant power savings by reusing as much as possible from the work done by the front-end of a typical superscalar, out-of-order pipeline, via the use of a special cache nested deeply into the processor structure. By reusing instructions that are already decoded, reordered, and have their registers already renamed, the front end of the pipeline can be turned off for large periods of time with significant savings in the overall power consumption. Experimental results show up to 35% (30% on average) savings in average energy per committed instruction, and 35% (20% on average) savings in energy-delay product, with about 9% average performance loss, over a large spectrum of SPEC95 and SPEC2000 benchmarks.
机译:本文通过提出一种新的微体系结构来研究一种解决超标量,乱序处理器功耗问题的可能解决方案,该体系结构专门用于减少高端处理器不断增长的功耗需求。更确切地说,我们表明,通过修改公认的超标量处理器体系结构,可以在功耗方面实现显着的节省。我们的方法旨在限制用于动态优化(包括乱序调度和寄存器重命名)的典型处理器中越来越多的功率。我们提出的方法通过使用深度嵌套在处理器结构中的特殊缓存来尽可能多地重用典型超标量,无序管线的前端工作,从而实现了显着的节能效果。通过重新使用已经解码,重新排序并已对其寄存器进行重命名的指令,可以长时间关闭流水线的前端,从而显着节省了总体功耗。实验结果表明,在大范围的测试中,每条提交的指令平均可节省35%(平均30%)的能量,而节能产品可节省35%(平均20%)的能量,平均性能损失约9%。 SPEC95和SPEC2000基准。

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