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Evaluation of the Stretch S6 Hybrid Reconfigurable Embedded CPU Architecture for Power-Efficient Scientific Computing

机译:评估节能科学计算的拉伸S6混合可重构嵌入式CPU架构

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Embedded CPUs typically use much less power than desktop or server CPUs but provide limited or no support for floating-point arithmetic. Hybrid reconfigurable CPUs combine fixed and reconfigurable computing fabrics to balance better execution performance and power consumption. We show how a Stretch S6 hybrid reconfigurable CPU (S6) can be extended to natively support double precision floating-point arithmetic. For lower precision number formats, multiple parallel arithmetic units can be implemented. We evaluate if the superlinear performance improvement of floating-point multiplication on reconfigurable fabrics can be exploited in the framework of a hybrid reconfigurable CPU. We provide an in-depth investigation of data paths to and from the S6 reconfigurable fabric and present peak and sustained throughput as a function of wide registers used and total operand size. We demonstrate the effect of the given interface when using a floating-point fused multiply-accumulate (FMA) SIMD unit to accelerate the LINPACK benchmark. We identify a mismatch between the size of the S6's reconfigurable fabric and the available interface bandwidth as the major bottleneck limiting performance which makes it a poor choice for scientific workloads relying on native support for floating-point arithmetic.
机译:嵌入式CPU通常比桌面或服务器CPU的功率低得多,但为浮点算术提供有限或不支持。混合式可重新配置CPU结合了固定和可重新配置的计算面料,以平衡更好的执行性能和功耗。我们展示了STRACK S6混合可重新配置CPU(S6)如何扩展到本地支持双精度浮点算术。对于较低的精度编号格式,可以实现多个并行算术单元。我们评估是否可以在混合可重新配置CPU的框架中利用可重新配置织物上的浮点乘法的超连线性能提高。我们为从S6可重构结构和来自S6可重构结构的数据路径进行了深入的研究,并作为使用的广播寄存器和总操作数尺寸的函数,以及持续吞吐量。我们展示了给定接口在使用浮点融合乘积(FMA)SIMD单元时的效果,以加速LINPACK基准。我们在S6可重构结构的大小和可用界面带宽之间识别不匹配作为限制性性能的主要瓶颈,这使其成为依赖于浮点算法的本机支持的科学工作负载的差。

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