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Integrated Photonics for Low-Power Packet Networking

机译:用于低功耗分组网络的集成光子学

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Communications interconnects and networks will continue to play a large role in contributing to the global carbon footprint, especially in data center and cloud-computing applications exponential growth in capacity. Key to maximizing the benefits of photonics technology is highly functional, lower power, and large-scale photonics integration. In this paper, we report on the latest advances in the photonic integration technologies used for asynchronous optical packet switching using an example photonic integrated switched optical router, the label switched optical router architecture. We report measurements of the power consumed by the photonic circuits in performing their intended function, the electronics required to bias the photonics, processing electronics, and required cooling technology. Data is presented to show that there is room (potentially greater than 10 $times$) for improvement in the router packet-forwarding plane. The purpose of this exercise is not to provide a comparison of all-optical versus electronic routers, rather to present a data point on actual measurements of the power contributions for various photonic integration technologies of an all-optical packet router that has been demonstrated and conclude, where the technology can move to reduce power consumption for high-capacity packet routing systems.
机译:通信互连和网络将继续在促进全球碳足迹中发挥重要作用,尤其是在数据中心和云计算应用程序中,容量呈指数增长。最大化光子学技术优势的关键是功能强大,功耗更低以及大规模光子学集成。在本文中,我们将使用示例性的光子集成交换式光路由器(标签交换光路由器架构)报告用于异步光分组交换的光子集成技术的最新进展。我们报告了光子电路在执行其预期功能时所消耗的功率,偏置光子所需的电子设备,处理电子设备以及所需的冷却技术的测量结果。呈现的数据表明,路由器数据包转发平面中仍有改进的空间(可能大于10美元)。本练习的目的不是要提供全光路由器与电子路由器的比较,而是要提供一个数据点,该数据点是对已证明并得出结论的全光分组路由器各种光子集成技术的功率贡献的实际测量值的,该技术可以用来减少大容量分组路由系统的功耗。

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