Publication | Open Access
Online Measurement Error Detection for the ElectronicTransformer in a Smart Grid
32
Citations
25
References
2021
Year
EngineeringPower Grid OperationMeasurementElectronic TransformersIntelligent SystemsSystem MeasurementReliability EngineeringCalibrationSystems EngineeringAttention MechanismInternet Of ThingsElectrical EngineeringSeq2seq NetworkComputer EngineeringSmart Grid SecuritySignal ProcessingSmart GridAdvanced Metering InfrastructureSmart Distribution NetworkIndustrial Informatics
With the development of smart power grids, electronic transformers have been widely used to monitor the online status of power grids. However, electronic transformers have the drawback of poor long-term stability, leading to a requirement for frequent measurement. Aiming to monitor the online status frequently and conveniently, we proposed an attention mechanism-optimized Seq2Seq network to predict the error state of transformers, which combines an attention mechanism, Seq2Seq network, and bidirectional long short-term memory networks to mine the sequential information from online monitoring data of electronic transformers. We implemented the proposed method on the monitoring data of electronic transformers in a certain electric field. Experiments showed that our proposed attention mechanism-optimized Seq2Seq network has high accuracy in the aspect of error prediction.
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