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Centralized optical backplane bus using holographic optical elements for high performance computing.

机译:使用全息光学元件进行高性能计算的集中式光学底板总线。

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摘要

Optical communication is distinguished for its enormous interconnect capacity over long distance. As the cost of optical components drops, high bandwidth optical systems were successfully employed into local area network and computer racks because electrical counterparts are not able to deal with the data rate demands for these applications. With the popularity of multi-core CPU in High Performance Computers, the board-to-board interconnects exclusive based on electrical technology in backplane applications become insufficient because of not only bandwidth crises, but also wiring congestions. Many researches have projected that the progress of optical technology will further push down the boundary demarcating electrical and optical domains in the interconnect hierarchy. Accordingly, backplane or even board-to-board level interconnects will benefit from the complement of optical interconnect. From architecture point of view, an optical bus implementation of the optical interconnect has the potential advantage of both huge bandwidth and elimination of wiring congestion. In contrast, optical waveguide and free-space interconnects although provide high bandwidth capacity, are essentially point-to-point technology which requires routing to a central switch on the backplane. The centralized approach that was based on substrate guided optical interconnects is the only way known that fulfills a uniform fan-out for different nodes in a bus architecture, which allows medium sharing among nodes. In this dissertation, innovative bit-interleaved optical backplane bus architecture is created based on centralized substrate-guide optical interconnect, which allows the tremendous bandwidth capacity to be shared by retaining the share bus architecture. Therefore, a secure and reliable high speed transmission channel could be established by distributing copies of confidential information separately. The feature provided by this innovative design cannot be fulfilled using electrical interconnects or other optical point-to-point technology without causing wiring congestions. In this dissertation, the optical characteristics of the centralized optical bus such as bandwidth and alignment tolerance are analyzed so that multi-channel implementation are successful on the fabricated optical interconnect layer. A 3-board-16-channel computer server using optical backplane board demonstrator using centralized optical bus was built upon the simulation, design and packaging work.
机译:光通信以其长距离的巨大互连能力而著称。随着光学组件成本的下降,高带宽光学系统已成功应用于局域网和计算机机架中,因为电子对等设备无法满足这些应用的数据速率要求。随着高性能计算机中多核CPU的普及,背板应用中基于电气技术的专有的板对板互连变得不足够,这不仅是因为带宽危机,还因为布线拥塞。许多研究预测,光学技术的进步将进一步降低互连层次结构中划分电和光域的边界。因此,底板或什至板对板级互连将受益于光学互连的补充。从体系结构的角度来看,光互连的光总线实现具有巨大的带宽和消除布线拥塞的潜在优势。相反,光波导和自由空间互连虽然提供高带宽容量,但本质上是点对点技术,需要路由至背板上的中央交换机。基于衬底引导的光学互连的集中化方法是唯一已知的方法,该方法可以实现总线体系结构中不同节点的统一扇出,从而允许节点之间进行媒体共享。本文基于集中式基片-导引光互连技术,创建了创新的比特交错光背板总线架构,通过保留共享总线架构可以共享巨大的带宽容量。因此,可以通过分别分发机密信息的副本来建立安全可靠的高速传输通道。如果不使用电气互连或其他光学点对点技术,就无法实现这种创新设计所提供的功能,而不会引起布线拥塞。本文分析了集中式光总线的光学特性,例如带宽和对准容差,从而在所制造的光互连层上成功实现了多通道实现。在模拟,设计和封装工作的基础上,构建了使用光背板演示器和集中式光总线的3板16通道计算机服务器。

著录项

  • 作者

    Bi, Hai.;

  • 作者单位

    The University of Texas at Austin.$bElectrical and Computer Engineering.;

  • 授予单位 The University of Texas at Austin.$bElectrical and Computer Engineering.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 102 p.
  • 总页数 102
  • 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

  • 入库时间 2022-08-17 11:39:17

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