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Scalable optical switches: Architectures and physical layer characterization.

机译:可扩展的光开关:体系结构和物理层表征。

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摘要

Optical switches are the key components in realizing reconfigurable all optical networks. The deployment of optical switches (replacing the conventional electronic switches) at the network nodes enables increased switching capacity and flexibility to data rate, format, and protocol. The scaling of optical networks, while benefiting from optical transparency is however influenced by the accumulations of certain physical impairments, such as interference (crosstalk) and amplifier noises that cannot be entirely eliminated or compensated without the need for signal regeneration.;The objective of this work is to investigate the scalability of various optical switches and networks by using theoretical and experimental models. Integrated directional coupler switches are studied by developing an improved numerical model taking into account of all possible impairments for more accurate representation. New architectural options for large port count wavelength add/drop switches that are modular and cost effective are explored and accessed by making use of the experimental characterization results on the switch modules. Further, the performance aspects of cascading of switches in periodic networks are investigated experimentally by using a re-circulating test bed in the presence of combined physical impairments, and their impact on the tolerance to the switch crosstalk is revealed. Architectural options for the next generation of multi-granularity switching node, consisting of wavelength switches and semiconductor optical amplifier gates, are also explored and their physical layer performance in single and cascaded stages are experimentally characterized for optimum operating conditions.;The models, experimental and numerical, presented in this thesis, can be used to understand and predict the limitations due to various impairments in optical switches and networks and to design those systems by comparing different switching configurations and system parameters for an optimized performance, for any given set of requirements.
机译:光交换机是实现可重配置所有光网络的关键组件。在网络节点上部署光交换机(代替传统的电子交换机)可以提高交换容量,并提高数据速率,格式和协议的灵活性。然而,尽管受益于光学透明性,但光网络的规模却受到某些物理损伤(例如干扰(串扰)和放大器噪声)的累积的影响,这些损伤无法完全消除或补偿,而无需信号再生。我们的工作是通过理论和实验模型研究各种光开关和网络的可扩展性。通过开发一种改进的数值模型来研究集成式定向耦合器开关,该模型考虑了所有可能的损伤以实现更精确的表示。通过使用交换模块上的实验表征结果,探索并访问了模块化且具有成本效益的大端口数波长分插交换机的新体系结构选项。此外,在存在综合物理损伤的情况下,通过使用循环测试床,对周期性网络中交换机级联的性能方面进行了实验研究,并揭示了它们对交换机串扰容限的影响。还探索了由波长开关和半导体光放大器门组成的下一代多粒度开关节点的体系结构选项,并通过实验表征了它们在单级和级联阶段的物理层性能,以优化操作条件。本文提出的数值可以用于理解和预测由于光开关和网络中的各种损伤而引起的局限性,并且可以通过比较不同的开关配置和系统参数以针对任何给定的要求优化性能来设计那些系统。

著录项

  • 作者

    Shankar, Rathy.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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