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A Globally Arbitrated Memory Tree for Mixed-Time-Criticality Systems

机译:混合时间临界系统的全局仲裁内存树

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Embedded systems are increasingly based on multi-core platforms to accommodate a growing number of applications, some of which have real-time requirements. Resources, such as off-chip DRAM, are typically shared between the applications using memory interconnects with different arbitration polices to cater to diverse bandwidth and latency requirements. However, traditional centralized interconnects are not scalable as the number of clients increase. Similarly, current distributed interconnects either cannot satisfy the diverse requirements or have decoupled arbitration stages, resulting in larger area, power and worst-case latency. The four main contributions of this article are: 1) a Globally Arbitrated Memory Tree (GAMT) with a distributed architecture that scales well with the number of cores, 2) an RTL-level implementation that can be configured with five arbitration policies (three distinct and two as special cases), 3) the concept of mixed arbitration policies that allows the policy to be selected individually per core, and 4) a worst-case analysis for a mixed arbitration policy that combines TDM and FBSP arbitration.We compare the performance of GAMT with centralized implementations and show that it can run up to four times faster and have over 51 and 37 percent reduction in area and power consumption, respectively, for a given bandwidth.
机译:嵌入式系统越来越多地基于多核平台,以适应不断增长的应用程序,其中一些应用程序具有实时性。诸如片外DRAM之类的资源通常在应用程序之间使用具有不同仲裁策略的内存互连在应用程序之间共享,以满足各种带宽和延迟要求。但是,随着客户端数量的增加,传统的集中式互连无法扩展。类似地,当前的分布式互连要么不能满足多样化的要求,要么具有解耦的仲裁阶段,从而导致更大的面积,功率和最坏情况的延迟。本文的四个主要贡献是:1)具有分布式架构的全局仲裁内存树(GAMT),该架构可根据内核数量很好地扩展; 2)可以配置有五个仲裁策略的RTL级别实现(三个不同以及两个作为特殊情况),3)允许每个核心单独选择策略的混合仲裁策略的概念,4)结合了TDM和FBSP仲裁的混合仲裁策略的最坏情况分析。我们比较了性能GAMT的使用集中式实施的结果表明,在给定带宽下,它的运行速度可提高四倍,并且面积和功耗分别减少51%和37%以上。

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