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Estimation and forecasting of dynamic state estimation in power systems

10

Citations

14

References

2009

Year

Hong Li, Weiguo Li

Unknown Venue

Abstract

In this paper, a new method of real-time dynamic state estimation is proposed, in which the model parameters such as state transition matrix, model error and measurement error covariance matrices are all identified on-line. In this way, the degenerate estimated values caused by inaccurate state transition equations are removed, and the estimated precision is high. The method is employed in different scenarios while the estimation performance can be maintained effectively. This approach has been tested on IEEE 5-bus test system under various operating conditions, where normal operation, bad measurement, sudden load change / drastic generation variation are all investigated. The performance indices under different test cases are all evaluated. Test results support the feasibility of the proposed method for dynamic state estimation applications.

References

YearCitations

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