论文标题

根据数据加权增强电网监视

Enhancement of power grid monitoring based on data weighting

论文作者

Ataeian, Parisa, Rabiee, Abbas, Maram, Mehdi Derafshian, Zanjani, Mohsen Ghalei Monfared

论文摘要

随着他们的扩展,国家电力电网不得不与从大量变电站和发电厂收到的大量数据合作。鉴于它们的数量和多样性,这些数据可以归类为大数据。管理大量数据肯定具有挑战性。根据应用程序,这些数据的一部分对于实时网络操作更为重要。计算网络的可观察性得分而不将权重分配给不同信号可能无法提供收到数据的有效性的完整图片,从而导致对网络状态的评估不正确。因此,在可观察性计算中,应为能源管理系统(EMS)(EMS)的网络操作和功能至关重要的信号。与其他区域相比,加权可观察性以及经典的非加权可观察性可以作为每个区域的状况的指标,因此极大地促进了对传输数据的监视和验证。为了计算加权可观察性,当前论文介绍了一种基于分析层次结构过程(AHP)的方法,其中将更高的权重分配给对操作员更有价值和广泛使用的数据。选择了伊朗的国家电力网络,以评估拟议方法对数据质量和运营风险的影响。结果表明,引入的方法对接收到的数据的质量产生了积极影响,并纠正了网络中的错误数据。

With their expansion, national power grid have had to work with huge sets of data received from a vast number of substations and power plants. Given their large volume and variety, these data can be classified as big data. Managing this massive amount of data is certainly challenging. Depending on the application, parts of these data are more important for real-time network operation. Computing a network's observability score without assigning weights to different signals may not provide a complete picture of the received data's validity and thus lead to incorrect assessments of the network status. Consequently, signals critical to the network operation and functions of an energy management system (EMS) should be assigned higher weights in observability calculations. The weighted observability alongside the classic non-weighted observability can serve as an indicator of each area's condition in comparison to that of other areas and so greatly facilitate the monitoring and verification of transmitted data. For calculating a weighted observability, the current paper presents a method based on the Analytic Hierarchy Process (AHP), in which higher weights are assigned to data that are more valuable for and widely used by operators. The national electricity network of Iran was chosen for the evaluation of the proposed method's effect on data quality and operational risk. The results indicated that the introduced method positively affects the quality of received data and also corrects erroneous data in the network.

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