2024
DOI: 10.1038/s41597-024-03240-0
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A construction waste landfill dataset of two districts in Beijing, China from high resolution satellite images

Shaofu Lin,
Lei Huang,
Xiliang Liu
et al.

Abstract: Construction waste is unavoidable in the process of urban development, causing serious environmental pollution. Accurate assessment of municipal construction waste generation requires building construction waste identification models using deep learning technology. However, this process requires high-quality public datasets for model training and validation. This study utilizes Google Earth and GF-2 images as the data source to construct a specific dataset of construction waste landfills in the Changping and D… Show more

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Cited by 2 publications
(1 citation statement)
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“…Specifically, images of construction waste disposal sites in Daxing District were annotated. These augmented data were seamlessly integrated, creating an enriched and openly accessible dataset called the Construction Waste Disposal Sites Dataset (CWDSD) [52]. Researchers can use this dataset to investigate the sources, types, distribution, and impact of construction waste.…”
Section: Open-source Construction Waste Disposal Site Datasetsmentioning
confidence: 99%
“…Specifically, images of construction waste disposal sites in Daxing District were annotated. These augmented data were seamlessly integrated, creating an enriched and openly accessible dataset called the Construction Waste Disposal Sites Dataset (CWDSD) [52]. Researchers can use this dataset to investigate the sources, types, distribution, and impact of construction waste.…”
Section: Open-source Construction Waste Disposal Site Datasetsmentioning
confidence: 99%