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Synchrophasor Missing Data Recovery via Data-Driven Filtering

delete2020-09-01
delete22
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OA
AI
S
Stavros Konstantinopoulos *
G
Genevieve M. De Mijolla
J
Joe H. Chow
H
H. Lev-Ari
M
Meng Wang
DOI:10.1109/TSG.2020.2986439delete
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摘要

摘要

En 中文
To enhance reliability and observability, power systems in North America have installed a significant number of Phasor Measurement Units (PMUs) to monitor dynamic behaviors. For real-time applications, the PMU data are streamed via the Internet from the substations to the phasor data concentrators, in the control centers. The transmission of the PMU data however, is not always reliable and can be subjected to quality issues and losses due to latency and equipment malfunctions. In this paper, a temporal version of the OnLine Algorithm for PMU data processing (OLAP) is proposed to recover the missing data. The algorithm is geared toward prolonged data outages and especially signals exhibiting significant temporal patterns. The method is connected to adaptive filtering and a necessary stability criterion for the algorithm is derived.The method is compared against several low rank and streaming data recovery methods to evaluate its effectiveness.
Keyword:
Phasor measurement units
Real-time systems
Heuristic algorithms
Power system stability
Time measurement
Microsoft Windows
Power system dynamics
Synchrophasor
PMU
low rank recovery
adaptive filtering
OLAP

期刊

IEEE Transactions on Smart Grid 封面图
IEEE Transactions on Smart Grid
IF:
9.8
论文数:
5.7K
被引数:
4.3W

机构

G
General Electric
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4.4K
论文数: 3.4K
被引数: 2
R
rensselaer polytechnic institute
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7.0K
论文数: 6.5K
被引数: 6
N
Northeastern University
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2.5W
论文数: 1.6W
被引数: 3.0W
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