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Linear-programming-based techniques for synthesis of network-on-chip architectures

机译:基于线性编程的技术,用于片上网络架构的综合

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Application-specific system-on-chip (SoC) design offers the opportunity for incorporating custom network-on-chip (NoC) architectures that are more suitable for a particular application, and do not necessarily conform to regular topologies. This paper presents novel mixed integer linear programming (MILP) formulations for synthesis of custom NoC architectures. The optimization objective of the techniques is to minimize the power consumption subject to the performance constraints. We present a two-stage approach for solving the custom NoC synthesis problem. The power consumption of the NoC architecture is determined by both the physical links and routers. The power consumption of a physical link is dependent upon the length of the link, which in turn, is governed by the layout of the SoC. Therefore, in the first stage, we address the floorplanning problem that determines the locations of the various cores and the routers. In the second stage, we utilize the floorplan from the first stage to generate topology of the NoC and the routes for the various traffic traces. We also present a clustering-based heuristic technique for the second stage to reduce the run times of the MILP formulation. We analyze the quality of the results and solution times of the proposed techniques by extensive experimentation with realistic benchmarks and comparisons with regular mesh-based NoC architectures.
机译:特定于应用程序的片上系统(SoC)设计为合并自定义的片上网络(NoC)体系结构提供了机会,该体系结构更适合于特定应用程序,并且不一定符合常规拓扑。本文介绍了用于合成自定义NoC体系结构的新型混合整数线性规划(MILP)公式。该技术的优化目标是在性能约束下将功耗降至最低。我们提出了一种解决定制NoC合成问题的两阶段方法。 NoC架构的功耗由物理链路和路由器决定。物理链路的功耗取决于链路的长度,而链路的长度又取决于SoC的布局。因此,在第一阶段,我们解决了布局规划问题,该问题决定了各个核心和路由器的位置。在第二阶段,我们利用第一阶段的布局图来生成NoC的拓扑以及各种交通跟踪的路线。我们还在第二阶段提出了一种基于聚类的启发式技术,以减少MILP配方的运行时间。我们通过对实际基准进行广泛的实验,并与基于常规网格的NoC架构进行比较,来分析所提出技术的结果质量和解决时间。

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