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Data quality management of synchrophasor data in power systems by exploiting low-dimensional models

机译:利用低维模型,电力系统中同步仪数据的数据质量管理

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This extended summary introduces our recent work on phasor measurement unit (PMU) data analysis by exploiting the low-dimensional structures in spatial-temporal blocks of PMU data. An efficient online missing data recovery algorithm is proposed to leverage the low-rank property of the Hankel PMU data matrix to recover data losses even when all the measurements are lost simultaneously. A unified approach to data reduction, privatization, and recovery is proposed. Adding noise and applying quantization enhance the data privacy and reduce the communication burden. A data recovery method from quantized measurements is proposed to approximate the actual data asymptotically. The methods are accompanied with theoretical analysis and numerical evaluations on actual PMU datasets.
机译:该扩展摘要通过利用PMU数据的空间块中的低维结构,介绍了我们最近的相片测量单元(PMU)数据分析。提出了一种有效的在线缺失数据恢复算法,以利用Hankel PMU数据矩阵的低秩属性,即使在同时丢失所有测量时,也能恢复数据丢失。提出了一种统一的数据减少,私有化和恢复方法。添加噪声和应用量化增强了数据隐私并降低了通信负担。提出了一种来自量化测量的数据恢复方法,以近似于渐近的实际数据。这些方法伴随着实际PMU数据集的理论分析和数值评估。

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