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Topology-Aware Adaptive Routing for Nonstationary Irregular Mesh in Throttled 3D NoC Systems

机译:节流3D NoC系统中用于非平稳不规则网格的拓扑感知自适应路由

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摘要

Three-dimensional network-on-chip (3D NoC) has been proposed to solve the complex on-chip communication issues in future 3D multicore systems. However, the thermal problems of 3D NoC are more serious than 2D NoC due to chip stacking. To keep the temperature below a certain thermal limit, the thermal emergent routers are usually throttled. Then, the topology of 3D NoC becomes a Nonstationary Irregular Mesh (NSI-Mesh). To ensure the successful packet delivery in the NSI-Mesh, some routing algorithms had been proposed in the previous works. However, the network still suffers from extremely traffic imbalance among lateral and vertical logic layer. In this paper, we propose a Topology Aware Adaptive Routing (TAAR) to balance the traffic load for NSI-Mesh in 3D NoC. TAAR has three routing modes, which can be dynamically adjusted based on the topology status of the routing path. In addition to increasing routing flexibility, the TAAR also increases both vertical and lateral path diversity to balance the traffic load. Compared with the related adaptive routing methods, the experimental results show that the proposed TAAR can reduce 19 to 295 percent traffic loads in the bottom logic layer and improve around 7.7 to 380 percent network throughput. According to our proposed VLSI architecture, the TAAR only needs less than 24.8 percent hardware overhead compared with the previous works.
机译:提出了三维片上网络(3D NoC),以解决未来3D多核系统中的复杂片上通信问题。但是,由于芯片堆叠,3D NoC的散热问题比2D NoC更为严重。为了将温度保持在一定的热极限以下,通常会对热出口路由器进行节流。然后,3D NoC的拓扑变为非平稳不规则网格(NSI-Mesh)。为了确保在NSI-Mesh中成功传送数据包,先前的工作中已经提出了一些路由算法。但是,网络仍然遭受横向和纵向逻辑层之间极度的流量不平衡的困扰。在本文中,我们提出了一种拓扑感知自适应路由(TAAR),以平衡3D NoC中NSI-Mesh的流量负载。 TAAR具有三种路由模式,可以根据路由路径的拓扑状态进行动态调整。除了增加路由灵活性之外,TAAR还增加了垂直和横向路径的多样性,以平衡流量负载。与相关的自适应路由方法相比,实验结果表明,提出的TAAR可以减少底层逻辑层中19%至295%的流量负载,并提高7.7%至380%的网络吞吐量。根据我们提出的VLSI体系结构,与以前的工作相比,TAAR只需要不到24.8%的硬件开销。

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