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S2DI0: an extended scalable 2D mesh network-on-chip routing reconfiguration for efficient bypass of link failures

机译:S2DI0:扩展的可扩展2D网状片上网络路由重新配置,可有效绕过链路故障

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The paradigm of computing has shifted from computation-centric to communication-centric designs. Network-on-chip has emerged as an alternative interconnect mechanism for future multi-core designs. Transistor integration is approaching its limit, and this increases the susceptibility of the interconnects toward failures. Research efforts are directed toward improving the fault tolerance of these interconnects. Fault-tolerant routing such as segment-based and up*/down* are static by nature and require reconfiguration to circumvent failures. Failures may disrupt the connectivity of the network, and new routing instance needs to be configured in case old routing instance is unable to offer full connectivity. In this paper, we identify nodes affected by the failures and propose an extended scalable routing reconfiguration, called S2DIO. It performs reconfiguration of affected nodes by taking N-2 cycles for N x N mesh network, whereas state-of-the-art (ARIADNE) consumes N-4 cycles. Instead of routing tables, we employ logic-based routing and achieve significant improvements, i.e., 30.7% in terms of area and 29% in terms of power overhead for a 16 x 16 mesh router. A novel algorithm for computation of new logic-based routing bits is also proposed in this paper. Our reconfiguration (S2DIO) improves average flit latency up to 32% and throughput up to 19% for single-link failure in 8 x 8 2D mesh network-on-chip.
机译:计算的范式已经从以计算为中心的设计转变为以通信为中心的设计。片上网络已经成为未来多核设计的替代互连机制。晶体管集成正接近其极限,这增加了互连对故障的敏感性。研究工作旨在提高这些互连的容错能力。容错路由(例如基于分段的路由和up * / down *)本质上是静态的,需要重新配置以规避故障。故障可能会破坏网络的连接,并且如果旧的路由实例无法提供完整的连接,则需要配置新的路由实例。在本文中,我们确定了受故障影响的节点,并提出了扩展的可扩展路由重新配置,称为S2DIO。它通过对N x N个网状网络花费N-2个周期来对受影响的节点进行重新配置,而最新技术(ARIADNE)消耗了N-4个周期。我们使用基于逻辑的路由来代替路由表,并实现了显着的改进,即对于16 x 16网格路由器,其面积减少了30.7%,功率开销减少了29%。本文还提出了一种新的基于逻辑的路由位计算算法。对于8 x 8 2D网状片上网络的单链路故障,我们的重新配置(S2DIO)可将平均flit延迟提高32%,将吞吐量提高19%。

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