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Control speculation for energy-efficient next-generation superscalar processors

机译:节能的下一代超标量处理器的控制推测

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Conventional front-end designs attempt to maximize the number of "in-flight" instructions in the pipeline. However, branch mispredictions cause the processor to fetch useless instructions that are eventually squashed, increasing front-end energy and issue queue utilization and, thus, wasting around 30 percent of the power dissipated by a processor. Furthermore, processor design trends lead to increasing clock frequencies by lengthening the pipeline, which puts more pressure on the branch prediction engine since branches take longer to be resolved. As next-generation high-performance processors become deeply pipelined, the amount of wasted energy due to misspeculated instructions will go up. The aim of this work is to reduce the energy consumption of misspeculated instructions. We propose selective throttling, which triggers different power-aware techniques (fetch throttling, decode throttling, or disabling the selection logic) depending on the branch prediction confidence level. Results show that combining fetch-bandwidth reduction along with select-logic disabling provides the best performance in terms of overall energy reduction and energy-delay product improvement (14 percent and 10 percent, respectively, for a processor with a 22-stage pipeline and 16 percent and 13 percent, respectively, for a processor with a 42-stage pipeline).
机译:传统的前端设计试图使流水线中“运行中”的指令数量最大化。但是,分支预测错误会导致处理器获取无用的指令,这些指令最终将被压缩,从而增加了前端能耗并发布了队列利用率,从而浪费了处理器所消耗的功率的30%左右。此外,处理器设计趋势会通过延长流水线来增加时钟频率,这会给分支预测引擎带来更大压力,因为分支需要更长的时间才能解决。随着下一代高性能处理器的深入流水线化,由于错误推测的指令而造成的能源浪费将增加。这项工作的目的是减少错误推测的指令的能耗。我们提出了选择性限制,它会根据分支预测的置信度触发不同的功耗感知技术(获取限制,解码限制或禁用选择逻辑)。结果表明,将提取带宽减少与选择逻辑禁用相结合可提供最佳的整体性能(在具有22级流水线和16级流水线的处理器上,其整体能耗降低和能源延迟产品改进方面)对于具有42级流水线的处理器,分别为50%和13%)。

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