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Process-variation aware mapping of real-time streaming applications to MPSoCs for improved yield

机译:处理 - 实时流式应用程序对MPsoc的变化意识映射,以提高产量

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As technology scales, the impact of process variation on the maximum supported frequency (FMAX) of individual cores in a MPSoC becomes more pronounced. Task allocation without variation-aware performance analysis can result in a significant loss in yield, defined as the number of manufactured chips satisfying the application timing requirement. We propose variation-aware task allocation for real-time streaming applications modeled as task graphs. Our solutions are primarily based on the throughput requirement, which is the most important timing requirement in many real-time streaming applications. The three main contributions of this paper are: 1) Using data flow graphs that are well-suited for modeling and analysis of real-time streaming applications, we explicitly model task execution both in terms of clock cycles (which is independent of variation) and seconds (which does depend on the variation of the resource), which we connect by an explicit binding. 2) We present two approaches for optimizing the yield. The approaches give different results at different costs. 3) We present exhaustive and heuristic algorithms that implement the optimization approaches. Our variation-aware mapping algorithms are tested on models of real applications, and are compared to the mapping methods that are unaware of hardware variation. Our results demonstrate yield improvements of up to 50% with an average of 31%, showing the effectiveness of our approaches.
机译:随着技术尺度,MPSOC中各个核心的最大支持频率(Fmax)的影响变化变得更加明显。任务分配而不进行变化感知性能分析,可能导致产量显着损失,定义为满足应用程序定时要求的制造芯片的数量。我们提出了变体感知任务分配,用于建模为任务图形的实时流媒体应用程序。我们的解决方案主要基于吞吐量要求,这是许多实时流应用中最重要的时序要求。本文的三个主要贡献包括:1)使用适合对实时流应用的建模和分析的数据流图,我们在时钟周期(其与变化无关)中都明确地模拟任务执行秒(这取决于资源的变化),我们通过显式绑定连接。 2)我们提出了两种优化产量的方法。该方法以不同的成本提供不同的结果。 3)我们提供了实现优化方法的详尽和启发式算法。我们的变体感知映射算法在实际应用的型号上进行测试,并与不知道硬件变化的映射方法进行比较。我们的结果表明产量提高高达50%,平均31%,显示了我们方法的有效性。

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