five

Solar Panel Soiling Image dataset

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IEEE2026-04-17 收录
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https://ieee-dataport.org/documents/solar-panel-soiling-image-dataset
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The impact of soiling on solar panels is an important and well-studied problem in renewable energy sector. In this project, we present the first convolutional neural network (CNN) based approach for solar panel soiling and defect analysis. Our approach takes an RGB image of solar panel and environmental factors as inputs to predict power loss, soiling localization, and soiling type. In computer vision, localization is a complex task which typically requires manually labeled training data such as bounding boxes or segmentation masks. Our proposed approach consists of specialized four stages which completely avoids localization ground truth and only needs panel images with power loss labels for training.
提供机构:
Ravi Teja Potla
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