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Dedicated path protection for optical networks based on function programmable nodes

机译:基于功能可编程节点的光网络专用路径保护

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AbstractDue to the constantly increasing volumes and tightening reliability requirements of network traffic, survivability is one of the key concerns in optical network design. Optical “white box” nodes based on the Architecture on Demand (AoD) paradigm allow for self-healing of nodal component failures due to their architectural flexibility and the ability to employ idle components for failure recovery. By incorporating node-level survivability with network-level protection from link failures, resiliency of optical networks can be significantly improved. To this end, we propose a survivable routing algorithm for AoD-based networks called Dedicated Path Protection with Enforced Fiber Switching (DPP-EFS), which combines self-healing at the node level with dedicated path protection at the network level. The algorithm aims at improving the self-healing capabilities of the nodes by increasing the percentage of fiber switching (FS). Namely, fiber-switched lightpaths require a minimal amount of processing within the node (i.e. only signal switching), while other aspects of processing (e.g. demultiplexing, bandwidth virtualization) and the related components (i.e. demultiplexers, splitters, wavelength selective switches) remain unused and may be used as redundancy. On the other hand, lightpaths that are not eligible for FS have to be re-routed to alternative, longer paths in order to allow for FS between certain ports within the node. Therefore, the proposed algorithm pursues an advantageous trade-off between the increase of the number of idle components which can be used as redundancy at the node level and the unwanted length increase of lightpaths re-routed to render components redundant. For particular cases when DPP-EFS is not able to reduce the mean down time (MDT) in the network merely by increasing the percentage of fiber switching, we propose an algorithm for Dedicated Path Protection with Fixed Shortest Path routing and added Redundancy (DPP-FSP-RED) which adds additional spare components at strategic nodes to ensure that all connections have at least one redundant node component along their path. Simulation results show a significant reduction in MDT with minimal extra capital expenses.
机译: 摘要 由于网络流量的不断增长和对可靠性的严格要求,可生存性是光网络设计中的关键问题之一。基于按需体系结构(AoD)范式的光学“白盒”节点由于节点的体系结构灵活性以及使用空闲组件进行故障恢复的能力,可以实现节点组件故障的自我修复。通过将节点级的生存能力与网络级的链路故障保护相结合,可以显着提高光网络的弹性。为此,我们为基于AoD的网络提出了一种可生存的路由算法,称为带有强制光纤交换的专用路径保护(DPP-EFS),该算法将节点级别的自我修复与网络级别的专用路径保护相结合。该算法旨在通过增加光纤交换(FS)的百分比来提高节点的自愈能力。即,光纤交换光路在节点内需要最少的处理量(即仅信号交换),而处理的其他方面(例如,多路分解,带宽虚拟化)和相关组件(即,多路分解器,分离器,波长选择开关)仍未使用并且可以用作冗余。另一方面,不适合FS的光路必须重新路由到其他更长的路径,以便在节点内某些端口之间允许FS。因此,所提出的算法在可以用作节点级冗余的空闲组件数量的增加与重新路由以使组件冗余的光路的不想要的长度增加之间寻求有利的权衡。对于DPP-EFS无法仅通过增加光纤交换百分比来减少网络中的平均停机时间(MDT)的特殊情况,我们提出了一种具有固定最短路径路由和增加冗余的专用路径保护算法(DPP- FSP-RED),在战略节点处添加其他备用组件,以确保所有连接沿其路径至少具有一个冗余节点组件。仿真结果表明,使用最小的额外资本支出即可显着降低MDT。

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