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INVITED Time-Predictable Computing by Design: Looking Back, Looking Forward

机译:通过设计邀请时间可预测的计算:回顾,展望

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摘要

We present two contrasting approaches to achieve time predictability in the embedded compute engine, the basic building block of any Internet of Things (IoT) or Cyber-Physical (CPS) system. The traditional approach offers predictability on top of unpredictable processors with numerous optimizations for enhanced performance and programmability at the cost of huge variability in timing. Approaches such as Worst-Case Execution Time (WCET) analysis of software have been struggling to model the complex timing behavior of the underlying processor to provide guarantees. On the other hand, the inevitable slowdown of Moore’s Law and the end of Dennard scaling have curtailed the performance and energy scaling of the processors. This stagnation in conjunction with the importance of cognitive computing have motivated widespread adoption of non-von Neumann accelerators and architectures. We argue that these emerging architectures are inherently time-predictable as they depend on software to orchestrate the computation and data movement and are an excellent match for the real-time processing needs.
机译:我们提出两种相反的方法来实现嵌入式计算引擎中的时间可预测性,这是任何物联网(IoT)或网络物理(CPS)系统的基本构建块。传统方法在不可预测的处理器之上提供可预测性,并进行了大量优化以增强性能和可编程性,但代价是时序的巨大变化。诸如软件的最坏情况执行时间(WCET)分析之类的方法一直在努力模拟基础处理器的复杂定时行为,以提供保证。另一方面,摩尔定律不可避免的放慢速度以及Dennard缩放的终结都降低了处理器的性能和能量缩放。这种停滞以及认知计算的重要性促使非冯·诺依曼加速器和体系结构被广泛采用。我们认为,这些新兴体系结构固有地可预测时间,因为它们依赖于软件来协调计算和数据移动,并且与实时处理需求非常匹配。

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