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Cost Savings and Robustness Improvements in IP-over-DWDM Core Networks by Employment of CD-ROADMs and Advanced Multilayer Survivability Schemes

机译:通过使用CD-Roadms和先进的多层生存性方案,在IP-OVDM核心网络中节省成本节约和鲁棒性改进

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Today's IP Core Networks typically use A/B-Plane protection for all service classes (disregarding best effort and high-QoS classes). Enabled by Colorless and Directionless Remotely Configurable Optical Add/Drop Multiplexers (CDROADMs) new technologies offer increased flexibility on the optical layer. In addition to reducing operational expenditures, the flexible optical layer can be used to offer differentiated multilayer resilience combining classical IP protection with optical restoration in IP-over-Optical networks. In this paper the authors evaluate IP-over-DWDM core network architectures. Four scenarios are considered: (i) an adjacent IP core network as today's reference with opaque lightpath termination at any intermediate WDM terminal, (ii) a fully meshed IP core network with transparent lightpaths between all IP node pairs, and (iii) a multilayer optimized network with selective bypass between node pairs. These three network scenarios are assumed to use a classical IP A/B-plane network design, where links in each plane are loaded with maximum 50%, so that in case of any failure in a single plane, the traffic can be rerouted over the surviving plane. Compared to the above three scenarios is (iv) a novel multilayer resilience scheme, where IP A/B-plane protection is combined with optical layer restoration. The IP protection is employed for high-quality traffic, whereas the slower optical restoration is used for the best-effort traffic survivability. The four scenarios are evaluated based on a 14 node German reference network defined in. In addition to guidelines for the cost-efficient IP topology design of multilayer IP-over-DWDM core networks, the authors show that in case of the German backbone reference network the combination of IP A/B-plane protection with optical restoration requires 24 - 27% fewer line interfaces compared to the multilayer optimized bypass network design.
机译:今天的IP核心网络通常使用适用于所有服务类的/ B平面保护(无视最佳努力和高QoS类)。通过无色和无缝远程可配置的光学添加/丢弃多路复用器(CDROODMS)启用新技术在光学层上提供更大的灵活性。除了减少操作支出之外,柔性光学层还可用于提供与IP过光网络中的光学恢复相结合的差异化多层弹性。在本文中,作者评估了IP-Ovd-DWDM核心网络架构。考虑了四种情况:(i)一个相邻的IP核心网络,作为今天的IPAque LightPath终端在任何中间WDM终端上的引用,(ii)在所有IP节点对之间具有透明光路的完全网状IP核心网络,(III)多层优化网络,节点对之间的选择性旁路。假设这三种网络场景使用了经典的IP A / B平面网络设计,其中每个平面中的链接最多50%,因此在单个平面中发生故障的情况下,可以通过以下情况进行流量。幸存的飞机。与上述三种情况相比是(iv)一种新型多层弹性方案,其中IP A / B平面保护与光学层恢复相结合。 IP保护用于高质量的流量,而较慢的光学恢复用于最佳流量生存能力。根据定义的14个节点德国参考网络评估了四种情况。除了多层IP-DWDM核心网络的成本高效的IP拓扑设计的指导方案外,作者还表明,如果德国骨干参考网络与多层优化旁路网络设计相比,具有光学恢复的IP A / B平面保护的组合需要24-27%的线路接口。

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