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Energy-Performance Tradeoffs in Processor Architecture and Circuit Design: A Marginal Cost Analysis

机译:处理器架构和电路设计中的能量性能权衡:边际成本分析

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Power consumption has become a major constraint in the design of processors today. To optimize a processor for energy-efficiency requires an examination of energy-performance trade offs in all aspects of the processor design space, including both architectural and circuit design choices. In this paper, we apply an integrated architecture-circuit optimization framework to map out energy-performance trade-offs of several different high-level processor architectures. We show how the joint architecture-circuit space provides a trade-off range of approximately 6.5x in performance for 4x energy, and we identify the optimal architectures for different design objectives. We then show that many of the designs in this space come at very high marginal costs. Our results show that, for a large range of design objectives, voltage scaling is effective in efficiently trading off performance and energy, and that the choice of optimal architecture and circuits does not change much during voltage scaling. Finally, we show that with only two designs-a dual-issue in-order design and a dual-issue out-of-order design, both properly optimized-a large part of the energy-performance trade-off space can be covered within 3% of the optimal energy-efficiency.
机译:功耗已成为当今处理器设计中的主要限制。为了优化能源效率的处理器需要在处理器设计空间的各个方面进行能量性能贸易问题,包括架构和电路设计选择。在本文中,我们应用了一个集成的架构电路优化框架,以映射几种不同高级处理器架构的能量性能权衡。我们展示了联合架构 - 电路空间如何为4X能量的性能提供约6.5倍的权衡范围,并且我们确定了不同设计目标的最佳架构。然后我们展示了这个空间中的许多设计都具有非常高的边际成本。我们的结果表明,对于大量的设计目标,电压缩放在有效地交易性能和能量方面是有效的,并且在电压缩放期间最佳架构和电路的选择不会改变太多。最后,我们表明,只有两个设计 - 一个双问题的订单设计和双问题无序设计,都可以覆盖适当优化的大部分能量性能权衡空间最佳能量效率的3%。

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