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A Physical Probabilistic Network Model for Distribution Network Topology Recognition Using Smart Meter Data

机译:使用智能电表数据的配电网拓扑识别的物理概率网络模型

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Given the considerable scale of distribution networks in urban and rural areas, as well as the lack of management records, adjustments of switches during the distribution system operation are poorly documented. Such deficiency results in the inaccuracy of models stored in the distribution network automation system, and thus misleads the state estimation. With the emergence of information and communication technology, a large number of the feeder and residential smart meter data are accumulated. Such data can help recognize the operation modes of distribution networks by analyzing the relationships between the on/off states of switches and the voltage correlations among buses. However, the limited quantity and quality of the sampling data restrict the implementation of data-driven recognition. In this paper, a physical-probabilistic-network (PPN) model applied for inferring overall operation mode of distribution networks is proposed. Based on which, a belief propagation-based algorithm is proposed for the inference even under situations when there are only partial bus voltages data available. Meanwhile, the required variable for inference can be reduced from the active trail analysis. Experiment results are used to compare its performance with classic methods and to prove its effectiveness and advantages.
机译:考虑到城市和农村地区的配电网络规模庞大,以及缺乏管理记录,在配电系统运行过程中对交换机的调整记录得很少。这种缺陷导致配电网络自动化系统中存储的模型不准确,从而误导了状态估计。随着信息和通信技术的出现,大量的馈线和住宅智能电表数据被积累。通过分析开关的开/关状态和总线之间的电压相关性之间的关系,此类数据可以帮助识别配电网络的运行模式。但是,有限数量和质量的采样数据限制了数据驱动识别的实现。本文提出了一种物理概率网络(PPN)模型,用于推断配电网的整体运行模式。基于此,即使在只有部分总线电压数据可用的情况下,也提出了一种基于信念传播的算法进行推理。同时,可以从主动路径分析中减少推理所需的变量。实验结果用于比较其性能与经典方法,并证明其有效性和优势。

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