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A Variable-pipeline On-chip Router Optimized to Traffic Pattern

机译:优化流量模式的可变流水线片上路由器

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Network-on-Chip (NoC) can be evaluated from various aspects, such as communication latency, throughput, and power consumption. The preference of these requirements depends on each application. An on-chip variable-pipeline (VP) router that can adapt to these requirements by dynamically reconfiguring its data path structure is proposed in this paper. In response to the communication pattern, it can change the pipeline structure, supply voltage, and operational frequency using the dynamic voltage and frequency scaling (DVFS). As the traffic load becomes high, the VP router uses a look-ahead two-cycle pipeline structure for exploiting the maximum frequency, while it behaves as a one-cycle router when a low latency is preferred. A three-cycle pipelined structure with an adaptive routing enables to dynamically avoid hotspots. Instead of a simple pipeline-stage unification which causes rapid decrease of the operating frequency, by speculatively executing multiple pipeline stages in parallel, the operating frequency gracefully decreases as the number of the pipeline stages increases. Simulation results show that the one-cycle mode offers the shortest communication latency, while the two-cycle mode achieves the highest throughput for SPLASH-2 benchmarks.
机译:片上网络(NoC)可以从各个方面进行评估,例如通信延迟,吞吐量和功耗。这些要求的偏好取决于每个应用程序。本文提出了一种可以通过动态重新配置其数据路径结构来适应这些要求的片上可变管道(VP)路由器。响应通信模式,它可以使用动态电压和频率缩放(DVFS)来更改管道结构,电源电压和工作频率。当流量负载变高时,VP路由器使用前瞻性的两周期流水线结构来利用最大频率,而当首选低延迟时,它充当单周期路由器。具有自适应路由的三周期流水线结构可以动态避免热点。代替简单的流水线级统一会导致工作频率的快速降低,通过推测性地并行执行多个流水线级,工作频率随流水线级数的增加而适度地降低。仿真结果表明,一周期模式提供了最短的通信延迟,而二周期模式则为SPLASH-2基准测试提供了最高的吞吐量。

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