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PROTON plus : A Placement and Routing Tool for 3D Optical Networks-on-Chip with a Single Optical Layer

机译:PROTON plus:具有单个光学层的3D片上光学网络的布局和路由工具

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摘要

Optical Networks-on-Chip (ONoCs) are a promising technology to overcome the bottleneck of low bandwidth of electronic Networks-on-Chip. Recent research discusses power and performance benefits of ONoCs based on their system-level design, while layout effects are typically overlooked. As a consequence, laser power requirements are inaccurately computed from the logic scheme but do not consider the layout. In this article, we propose PROTON+, a fast tool for placement and routing of 3D ONoCs minimizing the total laser power. Using our tool, the required laser power of the system can be decreased by up to 94% compared to a state-of-the-art manually designed layout. In addition, with the help of our tool, we study the physical design space of ONoC topologies. For this purpose, topology synthesis methods (e.g., global connectivity and network partitioning) as well as different objective function weights are analyzed in order to minimize the maximum insertion loss and ultimately the system's laser power consumption. For the first time, we study optimal positions of memory controllers. A comparison of our algorithm to a state-of-the-art placer for electronic circuits shows the need for a different set of tools custom-tailored for the particular requirements of optical interconnects.
机译:片上光网络(ONoC)是一种有前途的技术,可以克服电子片上网络低带宽的瓶颈。最近的研究基于ONoC的系统级设计来讨论其功耗和性能优势,而布局效果通常被忽略。结果,从逻辑方案中不准确地计算出激光功率需求,但是没有考虑布局。在本文中,我们提出了PROTON +,这是一种用于放置和布线3D ONoC的快速工具,可将总激光功率降至最低。与先进的手动设计布局相比,使用我们的工具可以将系统所需的激光功率降低多达94%。另外,借助我们的工具,我们研究了ONoC拓扑的物理设计空间。为此目的,分析拓扑合成方法(例如,全局连接性和网络分区)以及不同的目标函数权重,以使最大的插入损耗以及最终系统的激光功耗最小化。第一次,我们研究内存控制器的最佳位置。将我们的算法与最先进的电子电路布局器进行比较,表明需要针对光学互连的特定要求量身定制的另一套工具。

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