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Packet Scheduling in Optical Switches and Interconnects.

机译:光交换和互连中的数据包调度。

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摘要

Optical interconnects and switches are widely considered as a promising candidate to provide high and ultra-high speed interconnection. This thesis addresses several important issues and proposes solutions in packet scheduling and performance evaluation for various optical switching architectures, including: (1) optimal packet scheduling for output-buffered optical switches with limited-range wavelength conversion capability; (2) admissible traffic and maximum throughput for input-buffered optical switches; (3) packet scheduling in single-wavelength and wavelength-division-multiplexed (WDM) OpCut switches, a low-latency optical/electronic hybrid switch architecture; (4) energy-aware routing in hybrid optical networks-on-chip (NoC).;In recent years, switches and interconnects draw increasingly more attention due to the fact that they tend to become a bottleneck at all levels: intra-chip, chip-to-chip, board level, and computer networks. There are many requirements posed on an interconnect network, such as low latency, high throughput, low error rate, low power consumption, as well as scalability. Finding a solution that can satisfy all these needs is a non-trivial task.;Due to the huge bandwidth and low error rate, optical interconnects and switches are widely considered as a promising candidate for future high and ultra-high speed interconnect networks. As key topics in the development of optical switching networks, scheduling and performance evaluation have been attracting considerable research interest. While there has been extensive research in these fields for electronic networks, most of them cannot be directly leveraged for optical networks---on one hand, some components are still missing in optical domain, for example optical random access memory (RAM); on the other hand, the solutions for electronic networks do not take into consideration unique characteristics of optics, such as the capability of wavelength conversion.;This dissertation addresses several important issues and proposes solutions in packet scheduling and performance evaluation for various optical switching architectures, including (1) the Augment to Full packet scheduling algorithm that maximizes throughput and minimizes average queuing delay simultaneously for output-buffered optical switches, making use of limited-range wavelength conversion; (2) a new fiber-delay-line (FDL) based input buffering fabric that is able to provide flexible buffering delay, and a weight-based scheduling algorithm, named Most Packet Wavelength-Fiber Pair First (MPWFPF), that delivers 100% throughput for input-buffered optical switches at speedup 1; (3) a basic three-stage scheduling procedure for the OpCut switch, furthermore, a pipeline mechanism for single-wavelength OpCut switches to relax time constraint and improve system throughput, and NP-hardness and inapproximability proof for the optimal scheduling problem in WDM OpCut switches, as well as bounded approximation algorithms; (4) an energy-aware routing mechanism for hybrid optical NoCs.
机译:光互连和交换机被广泛认为是提供高速和超高速互连的有希望的候选者。本文针对几个重要问题,提出了各种光交换架构的分组调度和性能评估的解决方案,包括:(1)具有有限范围波长转换能力的输出缓冲光交换机的最佳分组调度; (2)输入缓冲光交换机的允许流量和最大吞吐量; (3)单波长和波分复用(WDM)OpCut交换机中的分组调度,这是一种低延迟的光/电混合交换机架构; (4)片上混合光网络(NoC)中​​的能量感知路由;近年来,由于开关和互连往往会成为所有级别的瓶颈,因此越来越引起人们的关注:芯片内,芯片到芯片,板级和计算机网络。互连网络具有许多要求,例如低延迟,高吞吐量,低错误率,低功耗以及可伸缩性。找到满足所有这些需求的解决方案并非易事。由于带宽​​巨大且错误率低,光互连和交换机被广泛认为是未来高速和超高速互连网络的有希望的候选者。作为光交换网络发展的关键主题,调度和性能评估已经引起了相当大的研究兴趣。尽管在这些领域中对电子网络进行了广泛的研究,但它们中的大多数不能直接用于光网络-一方面,光域中仍然缺少某些组件,例如光随机存取存储器(RAM);另一方面,电子网络解决方案没有考虑到光学器件的独特特性,例如波长转换能力。本文解决了几个重要问题,并提出了各种光交换架构的分组调度和性能评估解决方案,包括:(1)利用增强的全包调度算法,利用有限范围的波长转换,同时最大化输出缓冲的光开关的吞吐量并最小化平均排队延迟; (2)一种新的基于光纤延迟线(FDL)的输入缓冲结构,能够提供灵活的缓冲延迟;以及一种基于权重的调度算法,称为“最大分组波长-光纤对优先(MPWFPF)”,可提供100%输入缓冲光开关的吞吐速率为1; (3)OpCut交换机的基本三阶段调度程序,此外,单波长OpCut交换机的流水线机制可放松时间限制并提高系统吞吐量,并为WDM OpCut中的最佳调度问题提供NP硬度和不可逼近性证明开关以及有界近似算法; (4)混合光学NoC的能量感知路由机制。

著录项

  • 作者

    Liu, Lin.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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