Anomaly Detection in Renewable Energy Big Data Using Deep Learning
Suzan MohammadAli Katamoura,
Mehmet Sabih Aksoy
Abstract:This work aims to review the literature on anomaly detection (AD) in renewable energy. Due to the significance of the RE data quality and sensor performance, it is crucial to ensure that the measurement device works correctly and maintains data accuracy. The review identifies the relevant studies on big data anomaly detection in the energy field and synthesizes the related techniques. Also, the study shows a need for segmentation annotations for solar system electroluminescence imagery complicating the domain … Show more
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