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Phase preserving profile generation from measurement data by clustering and performance analysis: a tool for network planning and operation

机译:通过聚类和性能分析从测量数据中生成相位保存配置文件:网络规划和运营工具

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The need for improved operational efficiency planning accuracy leads to a growing number of sensors and other monitoring sources in our power system. New methods for properly dealing with this increasing amount of data are required. This paper presents how clustering can help to drastically reduce the processing time of energy data time series. The developed approach categorizes similar load behavior by means of agglomerative hierarchical clustering based on their correlation coefficient. It includes the determination of the best number of clusters to model different load patterns with respect to the total error given as a key performance indicator. The results are a reduced set of representative three phase load profiles based on the data input and clustering configurations. The accuracy of these representative profiles is validated by resembling the original data set. Dependent on available computational resources a network operator can use this to intelligently compress measurement data while keeping the required accuracy. The method is demonstrated on data from the testbed of Aspern Smart City Research in Seestadt Aspern, Austria.
机译:对提高运营效率计划准确性的需求导致我们电力系统中的传感器和其他监视源数量不断增长。需要新的方法来正确处理不断增长的数据量。本文介绍了聚类如何帮助大大减少能源数据时间序列的处理时间。所开发的方法通过基于聚类的相关系数对聚类的聚类进行聚类,将其分类。它包括确定群集的最佳数量,以针对作为关键性能指标给出的总误差对不同的负载模式进行建模。结果是基于数据输入和聚类配置的一组减少的代表性三相负载曲线。这些代表性资料的准确性通过类似于原始数据集来验证。取决于可用的计算资源,网络运营商可以使用它来智能地压缩测量数据,同时保持所需的精度。该方法在来自奥地利Seestadt Aspern的Aspern Smart City Research测试平台的数据中得到了证明。

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