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Smart Grid Network Optimization: Data-Quality-Aware Volume Reduction

机译:智能电网网络优化:降低数据质量意识

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The power industry is in the early stages of a fundamental change, driving the integration of energy, communications, and information technologies into one intelligent utility network, known as the smart grid. This paper investigates data traffic management in smart grid networks, in which huge volumes of data produced by advanced meters cannot be fully delivered to utility data centers due to limited bandwidth. To develop a solution for optimizing traffic flow, we exploit a particular characteristic of this network—power-related applications can benefit from different levels of data quality along the path to the final destination. We thus handle congestion by performing intelligent quality-aware volume reduction of the flows within the network. Our optimization problem is that of computing for each flow the amount of volume reductions in different locations, so as to maximize overall revenue. We address both an off-line scenario, in which all flows are known beforehand, and an online framework, in which new flows can be generated during system operation. For the off-line case, we propose an efficient, near-optimal solution, while for the online case, we derive almost tight polylogarithmic upper and lower bounds on the competitive ratio. We also consider a more restricted dynamic setting, for which we demonstrate how to compute an optimal solution. This paper initiates a rigorous treatment of cross-layer traffic management in the smart grid.
机译:电力行业正处于根本变革的初期,它推动了将能源,通信和信息技术集成到一个称为智能电网的智能公用事业网络中。本文研究了智能电网网络中的数据流量管理,在该系统中,由于带宽有限,先进仪表产生的大量数据无法完全传送到公用事业数据中心。为了开发一种用于优化流量的解决方案,我们利用了该网络的特殊特性-与电源相关的应用程序可以从到达最终目的地的路径中受益于不同级别的数据质量。因此,我们通过对网络内流量进行智能的质量感知的数量减少来处理拥塞。我们的优化问题是为每个流计算不同位置的体积减少量,以使总收入最大化。我们既解决了离线情况(在这种情况下事先知道所有流程),又解决了在线框架(在其中可以在系统运行期间生成新流程)。对于离线情况,我们提出了一种有效的,接近最佳的解决方案,而对于在线情况,我们得出了竞争比率上几乎紧密的对数上限和下限。我们还考虑了更严格的动态设置,为此我们演示了如何计算最佳解决方案。本文对智能电网中的跨层流量管理进行了严格的处理。

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