光数据中心交换机的对比分析

Q3 Engineering Journal of Optical Communications Pub Date : 2023-09-08 DOI:10.1515/joc-2023-0126
Amit Sinha, Diwakar Bhardwaj, Vaibhav Shukla
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引用次数: 1

摘要

摘要近年来,数据中心系统内的数据流量呈爆炸式增长。数据量的快速增长极大地限制了当前主要基于电子控制器和存储器的数据通信网络的速度。电子设备的速度限制阻碍了它们以更高的速率有效处理数据的能力。为了解决这个问题并实现更快的数据处理,使用光通信成为最有前途的解决方案。光通信利用光信号和光组件的能力,与电子通信相比,光信号和光组件可以以更高的速率处理数据。光通信系统的一个关键要素是利用光纤延迟线(fdl)作为分组的光存储。fdl提供临时存储和延迟光信号的能力,在光网络中提供缓冲能力。这些fdl可以配置为各种设置,包括前馈、后馈和再循环配置,每种配置都有自己的优点和缺点。在此背景下,本文探讨了几种最先进的基于阵列波导光栅(AWG)的光分组交换机(OPSW)架构。这些交换机旨在有效地路由和管理数据中心网络中的光数据包。对每个体系结构进行总结,突出其独特的特性和功能。为了比较不同的基于awg的OPSW架构,我们考虑了各种关键参数,如成本、物理损耗、误码率(BER)和所需可调组件的数量。这些参数对于决定开关的性能、效率和成本效益至关重要。
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Comparative analysis of optical data center switches
Abstract In the recent past, there has been an explosive growth in data traffic within data center systems. This rapid increase in data volume has put significant constraints on the speed of current data communication networks, which are predominantly based on electronic controllers and memory. The speed limitations of electronic devices hinder their ability to process data at higher rates efficiently. To address this issue and enable faster data processing, the use of optical communication emerges as the most promising solution. Optical communication leverages the capabilities of light signals and optical components, which can handle data at much higher rates compared to their electronic counterparts. One key element in optical communication systems is the utilization of fiber delay lines (FDLs) as optical storage for packets. FDLs offer the ability to temporarily store and delay optical signals, providing buffering capabilities within optical networks. These FDLs can be configured in various setups, including feed forward, feed backward, and recirculating configurations, each with its own set of advantages and disadvantages. In this context, this article explores several state-of-the-art arrayed waveguide grating (AWG)-based optical packet switch (OPSW) architectures. These switches are designed to efficiently route and manage optical packets within data center networks. Each architecture is summarized, highlighting its unique features and capabilities. To compare the different AWG-based OPSW architectures, various key parameters are considered, such as the cost, physical losses, bit error rate (BER), and the number of tunable components required. These parameters are critical in determining the performance, efficiency, and cost-effectiveness of the switches.
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来源期刊
Journal of Optical Communications
Journal of Optical Communications Engineering-Electrical and Electronic Engineering
CiteScore
2.90
自引率
0.00%
发文量
86
期刊介绍: This is the journal for all scientists working in optical communications. Journal of Optical Communications was the first international publication covering all fields of optical communications with guided waves. It is the aim of the journal to serve all scientists engaged in optical communications as a comprehensive journal tailored to their needs and as a forum for their publications. The journal focuses on the main fields in optical communications
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