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Mapping application-specific topology to mesh topology with reconfigurable switches

机译:使用可重新配置的交换机将特定于应用程序的拓扑映射到网状拓扑

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When designing a Network-on-Chip (NoC) architecture, designers must consider various criteria such as bandwidth, performance, energy consumption, cost, re-usability, and fault tolerance. In most of the design efforts, it is very difficult to meet all these interacting constraints and objectives at the same time. Some of these parameters can be optimised and met easily by regular NoC topologies due to their re-usability and fault-tolerance capabilities. On the other hand, other parameters such as energy consumption, performance, and chip area can be better optimised in irregular NoC topologies. In this work, the authors present a novel two-step method that combines the advantages of regular and irregular NoC topologies. In the first step, the authors' method generates an energy and area optimised irregular topology for the given application by using a genetic algorithm. The generated topology uses the least amount of routers and links to minimise the area and energy; thus, it offers only one routing path between communicating nodes. Therefore, it does not fault tolerant. In the second step, their method maps the generated irregular topology to a reconfigurable mesh topology to make it fault tolerant. The detailed simulation results show the superiority of the proposed method over the existing work on several multimedia benchmarks.
机译:设计片上网络(NoC)架构时,设计人员必须考虑各种标准,例如带宽,性能,能耗,成本,可重用性和容错能力。在大多数设计工作中,很难同时满足所有这些相互作用的约束和目标。由于这些参数的可重用性和容错能力,它们可以通过常规的NoC拓扑进行优化和轻松满足。另一方面,在不规则的NoC拓扑中可以更好地优化其他参数,例如能耗,性能和芯片面积。在这项工作中,作者提出了一种新颖的两步法,该方法结合了常规和非常规NoC拓扑的优点。第一步,作者的方法通过使用遗传算法为给定的应用程序生成能量和面积优化的不规则拓扑。生成的拓扑使用最少数量的路由器和链接以最小化面积和能耗;因此,它仅在通信节点之间提供一条路由路径。因此,它不是容错的。在第二步中,他们的方法将生成的不规则拓扑映射到可重新配置的网格拓扑,以使其具有容错能力。详细的仿真结果表明,该方法相对于现有的几种多媒体基准测试工作具有优势。

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