论文标题

未来土地的光学网络:从启用光学Bypass到基于光学处理的范式

Optical Networking in Future-land: From Optical-bypass-enabled to Optical-processing-enabled Paradigm

论文作者

Hai, Dao Thanh

论文摘要

设计光学开关节点时的常规智慧植根于直觉,即当光通道越过中间节点时,应与其他光通道最大地隔离以避免干扰。这种悠久的范式感知到与对抗性因素相同节点的光通道的干扰,因此应规避,尽管合理,但可能会留下大量未开发的机会。确实,全光信号处理技术的快速进步通过将其幼稚功能从简单的添加/drop和交叉连接到主动混合光子域中的光通道来重新定义光节点结构。具体而言,近年来,全光通道(DE-)聚集技术在较低的位速率和/或调制格式下的两个或多个光通道可以全面聚集到一个高率和/或高级调制格式的单个通道,而可以反复进行。这种进化技术有望破坏现有的光学网络设计和计划的生态系统,因此有必要进行彻底的变化以解锁新的潜力。在解决这个破坏性的想法时,我们提出了一个新的范式,用于未来的光网络,即具有光学处理的网络,该网络由网络内部全面混合功能提供动力。我们介绍了光通道(DE-)聚集的运行原理,并展示了这种创新操作如何通过说明性示例产生的频谱有益。接下来,为了最大化聚合机会,我们提出了一个基于整数线性编程模型的最佳路由的数学模型。提供了现实网络拓扑成本的数值结果239,以量化与常规路由相比,量化聚合感知路由的频谱增益。

Conventional wisdom in designing the optical switching nodes is rooted in the intuition that when an optical channel crossing an intermediate node, it should be maximally isolated from other optical channels to avoid interference. Such long-established paradigm perceiving the interference of optical channels transiting at the same node as an adversarial factor and should therefore circumvent, albeit reasonable, may leave vast unexplored opportunities. Indeed, rapid advances in all-optical signal processing technologies has brought opportunities to re-define the optical node architecture by upgrading its naive functionalities from simply add/drop and cross-connecting to proactively mixing optical channels in photonic domain. Specifically, all-optical channel (de-) aggregation technologies have been remarkably advancing in recent years, permitting two or more optical channels at lower bit-rate and/or modulation formats could be all-optically aggregated to a single channel of higher-rate and/or higher-order modulation format and vice versa. Such evolutionary technique is poised to disrupt the existing ecosystem for optical network design and planning, and thus necessitates for a radical change to unlock new potentials. In addressing this disruptive idea, we present a new paradigm for future optical networks, namely, optical-processing-enabled networks powered by in-network all-optical mixing capability. We introduce the operational principle of optical channel (de-) aggregation and show how spectrally beneficial such innovative operations could yield by an illustrative example. Next, in order to maximize the aggregation opportunity, we present a mathematical model for optimal routing based on integer linear programming model. Numerical results on the realistic network topology COST239 are provided to quantify the spectral gain of aggregation-aware routing compared to the conventional one.

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