New architectures for optical packet switching using QD-SOAs for multi-wavelength buffering

K. Vlachos, W. Kabaciński, S. Wêclewski
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引用次数: 2

Abstract

We present two architectures for implementing optical buffers. Both use multi-wavelength selective elements like quantum dot semiconductor optical amplifiers (QD-SOAs) as multi-wavelength converters and fixed-length delay lines that are combined to form both an output queuing and a parallel buffer switch design. The output queuing buffer design requires less active devices (QD-SOA) when implementing large buffers, but the parallel buffer design becomes more profitable, when the number of wavelength channels that can be simultaneously processed by the wavelength selective switches (QD-SOAs) increases. This is because the number of active devices depends only on the buffer size. We also proposed scheduling algorithm to resolve packet contention in parallel buffer architecture and carried out a simulation considering mean packet delay, maximum buffer occupancy and packet loss probability.
使用多波长缓冲的qd - soa的光分组交换新架构
我们提出了实现光缓冲器的两种架构。两者都使用多波长选择元件,如量子点半导体光放大器(qd - soa)作为多波长转换器和固定长度延迟线,这些延迟线组合形成输出队列和并行缓冲开关设计。当实现大缓冲区时,输出排队缓冲器设计需要较少的有源器件(QD-SOA),但当波长选择开关(QD-SOA)可以同时处理的波长通道数量增加时,并行缓冲器设计变得更加有利可图。这是因为活动设备的数量只取决于缓冲区的大小。提出了并行缓冲结构中解决分组争用的调度算法,并考虑了平均分组延迟、最大缓冲区占用率和丢包概率进行了仿真。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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