A Real-Time Improved ML Method for PQD Classification of a PV-Powered EV Charging Station

被引:2
|
作者
Yilmaz, Alper [1 ]
Atesci, Tolga [2 ,3 ]
Meral, Hasan [2 ,3 ]
Bayrak, Gokay [1 ]
机构
[1] Bursa Tech Univ, Dept Elect & Elect Engn, Smart Grid Lab, TR-16310 Bursa, Turkiye
[2] Sibernetik Machinery Automat R&D Ctr, TR-16159 Bursa, Turkiye
[3] Bursa Tech Univ, Grad Sch Educ, TR-16310 Bursa, Turkiye
关键词
Feature extraction; Vectors; Transforms; Real-time systems; Support vector machines; Noise; Discrete wavelet transforms; Electric vehicle charging station (EVCS); machine learning; minimum redundancy maximum relevance (mRMR); power quality (PQ); undecimated wavelet transform (UWT); OPTIMAL FEATURE-SELECTION; QUALITY DISTURBANCES; FEATURE-EXTRACTION; WAVELET TRANSFORM; SVM;
D O I
10.1109/TIE.2024.3436549
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The installation of electric vehicle charging stations (EVCSs) that are powered by renewable energy sources has been growing rapidly. However, this has raised a crucial issue regarding the quality of power supplied to these stations. Due to the intermittent nature of renewable energy sources and the high-power requirements of EV charging, power quality disturbances (PQDs) occur more. This study proposes a new intelligent PQD classification method that considers feature extraction/selection based on pyramidal undecimated wavelet transform (p-UWT) and minimum redundancy maximum relevance (mRMR). The feature vector, derived through the application of mRMR, comprises a mere ten elements. The p-UWT-mRMR combination overcomes the problem of noise sensitivity inWTs. In addition, Bayesian optimization and UWT-mRMR have addressed hyperparameter selection difficulties and overfitting in support vector machine models. The proposed method demonstrated an impressive classification accuracy of 99.55% when faced with 30-dB noise. A prototype test platform is developed with EVCS-integrated PV systems in the laboratory to verify the performance of the proposed method in real-time cases. Dynamic analysis revealed that all PQDs have runtimes ranging from 5 to 10ms in experiments. The proposed method has been validated on a dataset of over 20 000 real-world signals with a test accuracy of 99.11%.
引用
收藏
页码:2622 / 2632
页数:11
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