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Routing-Based Traffic Migration and Buffer Allocation Schemes for 3-D Network-on-Chip Systems With Thermal Limit

机译:具有热限制的3D片上网络系统基于路由的流量迁移和缓冲区分配方案

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The 3-D network-on-chip (NoC) router is a major source of thermal hotspots, limiting the performance gain of 3-D integration. Due to the varying cooling efficiency of different silicon layers in 3-D NoC, the optimal criteria of traditional load balancing design (LBD) scheme and temperature balancing design (TBD) scheme may not be satisfied. To analyze the tradeoff between performance and temperature, we provide a new analytical model. The model shows that the LBD scheme and the TBD scheme can be considered as two corner cases in the design space, and design cases can be categorized by comparing the bandwidth bound and the thermal-limited bound. To find the optimal design criteria between the LBD and the TBD schemes in 3-D NoC, we propose a new routing-based traffic migration, vertical-downward lateral-adaptive proactive routing (VDLAPR), and buffer allocation methods, vertical buffer allocation (VBA). The VDLAPR algorithm enables to tradeoff between the LBD and the TBD schemes. The proposed VBA method mitigates the traffic congestion caused by traffic migration. To reach the optimal configuration, we propose a systematic design flow, which assists in finding the best design parameters in the expanded space between LBD and TBD. Based on the traffic-thermal co-simulation experiments, the achievable throughput can be improved from 2.7% to 45.2% using the proposed design scheme.
机译:3-D片上网络(NoC)路由器是热点的主要来源,这限制了3-D集成的性能增益。由于3-D NoC中不同硅层的冷却效率变化,可能无法满足传统负载平衡设计(LBD)方案和温度平衡设计(TBD)方案的最佳标准。为了分析性能和温度之间的折衷,我们提供了一个新的分析模型。该模型表明,LBD方案和TBD方案可以被视为设计空间中的两个极端情况,并且可以通过比较带宽范围和热限制范围来对设计情况进行分类。为了在3-D NoC中找到LBD和TBD方案之间的最佳设计标准,我们提出了一种新的基于路由的流量迁移,垂直向下横向自适应主动路由(VDLAPR),缓冲区分配方法,垂直缓冲区分配( VBA)。 VDLAPR算法可以在LBD和TBD方案之间进行权衡。所提出的VBA方法减轻了由流量迁移引起的流量拥塞。为了达到最佳配置,我们提出了系统的设计流程,该流程有助于在LBD和TBD之间的扩展空间中找到最佳设计参数。基于交通热联合仿真实验,使用所提出的设计方案可以将吞吐量从2.7%提高到45.2%。

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