The age of acceleration is taking place, driven by the revolutionary digital transformation creating basically a digital version of our physical world and the currency in that digital space is data. Massive amount of data has been generated ranging from wearable devices monitoring our physical health every single millisecond to autonomous vehicles generating roughly 5Tb hourly to even astronomical activities producing an order of Exabytes on daily basis and then ultra-broadband Internet comes into play, moving such data to the cloud. Internet traffic therefore has been experiencing explosive growth and in this context, optical transport networks forming the backbone of the Internet are pushed for transformation in system capacity. While the intuitive solution of deploying multiple fibers can address the pressing demand for increased capacity, doing so does not bring improvement in economic of scales in terms of cost, power consumption and spectral efficiency. This necessitates for a different approach so that the fiber capacity could be utilized in a more efficient manner. In this paper, we focus on innovative techniques, that is, network coding and partial protection, to reduce the effective traffic load in order to achieve greater capacity efficiency for optical transport networks. Specifically, the application of network coding is examined by upgrading the functionalities of intermediate nodes with processing (i.e., encoding and decoding) capabilities. Besides, partial protection relying on the premise of providing just enough bandwidth in case of failure events is investigated for saving the redundant protection capacity. What is more interesting arises when combining both network coding and partial protection and we present insights on how to derive compounding gains in such unique prospect.
翻译:加速时代正在发生,其驱动因素是革命性的数字转型,它从根本上创造了我们物理世界的数字版本,数字空间的货币就是数据。产生了大量数据,从每毫秒监测我们身体健康的可磨装置到每秒约5Tb小时的自动车辆,到甚至天文活动,每天产生大约5Tb小时的速率,然后超宽带互联网开始运行,将这些数据转移到云层。因此,互联网交通经历了爆炸性增长,在此背景下,作为互联网主干线的光学运输网络被推向系统能力的改革。虽然部署多种纤维的直观解决方案可以满足对提高能力的需求,但这样做并没有在成本、电力消耗和光谱效率方面带来经济规模的改善。这要求采取不同的做法,以便能够更有效地利用纤维能力,从而将这些数据转移到云层上,即网络编码和部分保护,以减少作为互联网主干线的运输负荷,从而实现系统能力的转变。具体地说,在提高光学运输网络能力方面,网络编码应用的局部解决方案能够满足对成本的迫切需求,而网络的深度编码则通过升级的方式,在提高中间的加密能力,从而使数据升级地改进了对数据库进行保护。