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Lightpath fragmentation for efficient spectrum utilization in dynamic elastic optical networks

机译:光路碎片在动态弹性光网络中有效利用频谱

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摘要

The spectrum-sliced elastic optical path network (SLICE) architecture has been presented as an efficient solution for flexible bandwidth allocation in optical networks. An homologous problem to the classical Routing and Wavelength Assignment (RWA) arises in such an architecture, called Routing and Spectrum Assignment (RSA). Imposed by current transmission technologies enabling the elastic optical network concept, the spectrum contiguity constraint must be ensured in the RSA problem, meaning that the bandwidth requested by any connection must be allocated over a contiguous portion of the spectrum along the path between source and destination nodes. In a dynamic network scenario, where incoming connections are established and disconnected in a quite random fashion, spectral resources tend to be highly fragmented, preventing the allocation of large contiguous spectrum portions for high data-rate connection requests. As a result, high data-rate connections experience unfairly increased bocking probability in contrast to low data-rate ones. In view of this, the present article proposes a lightpath fragmentation mechanism that makes use of the idle transponders in the source node of a high data-rate connection request to fragment it into multiple low data-rate ones, more easily allocable in the network. Besides, aiming to support such an operation, a light-weight RSA algorithm is also proposed so as to properly allocate the generated lightpath fragments over the spectrum. Benefits of the proposed approach are quantified through extensive simulations, showing drastically reduced high data-rate connection blocking probability compared to a usual contiguous bandwidth allocation, while keeping the performance of low data-rate requests to similar levels.
机译:已经提出了频谱切片的弹性光路网络(SLICE)体系结构,作为在光网络中灵活分配带宽的有效解决方案。在这种称为路由和频谱分配(RSA)的体系结构中,出现了与经典路由和波长分配(RWA)的同源问题。当前的传输技术支持弹性光网络概念,因此必须在RSA问题中确保频谱连续性约束,这意味着任何连接所请求的带宽都必须沿着源节点和目标节点之间的路径在频谱的连续部分上分配。在动态网络方案中,传入连接以相当随机的方式建立和断开连接,频谱资源趋向于高度分散,从而无法为高数据速率连接请求分配较大的连续频谱部分。结果,与低数据速率的连接相比,高数据速率的连接经历了不公平的增加的锁定概率。鉴于此,本文提出了一种光路分段机制,该机制利用高数据速率连接请求的源节点中的空闲转发器将其分段为多个低数据速率连接器,在网络中更容易分配。此外,为了支持这种操作,还提出了一种轻量级的RSA算法,以在频谱上适当地分配所产生的光路片段。通过广泛的仿真量化了所提出方法的好处,显示出与通常的连续带宽分配相比,大大降低了高数据速率连接阻塞概率,同时将低数据速率请求的性能保持在相似水平。

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