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Multilayer traffic engineering for GMPLS-enabled networks

机译:启用GMPLS的网络的多层流量工程

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In recent years, significant work has been completed on traffic engineering enhancements to the generalized multiprotocol label switching protocol suite (E. Mannie Oct 2004) (D. Katz et al., Sept. 2003) (K. Kompella et al., Oct 2003). As a next step, reproducing the current trend of switching layers' integration happening in the data plane, network control is foreseen to go beyond the traditional per layer approach and tend toward an integrated model (K. Shimoto et al., Oct 2004) (E. Dotaro et al., Dec. 2004). In these multilayer environments, a single GMPLS control plane drives various distinct switching layers at the same time and as a coherent whole, taking benefit from the "common" property of GMPLS. Beyond this application of supporting network control across different technologies, in this article we catalog the unified traffic engineering paradigms, discuss their applicability, and present their enforcement techniques. Furthermore, we show that the common GMPLS concept has the advantage of low operational complexity, and enables unified TE capabilities such as efficient network resource usage and rapid service provisioning.
机译:近年来,关于流量工程对通用多协议标签交换协议套件的增强的工作已经完成(E. Mannie,2004年10月)(D.Katz等,2003年9月)(K.Kompella等,2003年10月)。 )。接下来,为了再现数据层中交换层集成的当前趋势,可以预见,网络控制将超越传统的每层方法,而趋向于集成模型(K. Shimoto等人,2004年10月)( E.Dotaro等人,2004年12月)。在这些多层环境中,单个GMPLS控制平面同时利用GMPLS的“公共”特性,同时并作为一个整体,驱动各种不同的交换层。除了支持跨技术控制网络的应用之外,本文还对统一的流量工程范式进行分类,讨论其适用性,并介绍其实施技术。此外,我们证明了通用的GMPLS概念具有操作复杂度低的优点,并实现了统一的TE功能,例如有效的网络资源使用和快速的服务供应。

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