Synthetic Sand Boil Dataset for Levee Monitoring
收藏IEEE2026-04-17 收录
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https://ieee-dataport.org/documents/synthetic-sand-boil-dataset-levee-monitoring
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资源简介:
This dataset, titled Synthetic Sand Boil Dataset for Levee Monitoring: Generated Using DreamBooth Diffusion Models, provides a comprehensive collection of synthetic images designed to facilitate the study and development of semantic segmentation models for sand boil detection in levee systems. Sand boils, a critical factor in levee integrity, pose significant risks during floods, necessitating accurate and efficient monitoring solutions. Leveraging the advanced capabilities of DreamBooth diffusion models, this dataset offers high-fidelity, pixel-aligned image-mask pairs that capture the complex and varied environments typical of levee systems. The dataset addresses the challenge of obtaining sufficient annotated data by providing a scalable and cost-effective alternative to traditional data collection methods. Each image in the dataset is accompanied by precise segmentation masks, enabling detailed analysis and model training. This synthetic dataset serves as a valuable resource for researchers and practitioners aiming to enhance levee monitoring techniques through deep learning and semantic segmentation. By integrating state-of-the-art generative models, the dataset supports the development of robust and accurate models, paving the way for improved environmental monitoring and disaster prevention strategies.
提供机构:
Abdelguerfi, Mahdi; Thapa, Padam Jung; Hoque, Md Tamjidul



