update read me, img embedding not working
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Rituxx96x
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README.md
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Label data: Ground-truth AGB measurements collected using LiDAR (Light Detection and Ranging) calibrated with in-situ measurements. LiDAR is able to generate high-quality AGB maps, but is more time consuming and intensive to collect than satellite imagery.
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# BioMassters: A Benchmark Dataset for Forest Biomass Estimation using Multi-modal Satellite Time-series [https://nascetti-a.github.io/BioMasster/]
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The objective of this repository is to provide a deep learning ready dataset to predict yearly Above Ground Biomass (AGB) for Finnish forests using multi-temporal satellite imagery from
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the European Space Agency and European Commission's joint Sentinel-1 and Sentinel-2 satellite missions, designed to collect a rich array of Earth observation data
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### Reference data:
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* Reference AGB measurements were collected using LiDAR (Light Detection and Ranging) calibrated with in-situ measurements.
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* Total 13000 patches, each patch covering 2,560 by 2,560 meter area.
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### Feature data:
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* Sentinel-1 SAR and Sentinel-2 MSI data
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* 12 months of data (1 image per month)
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* Total 310,000 patches
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### Data Specifications:
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<img src="https:"https://huggingface.co/datasets/nascetti-a/BioMassters/blob/main/Data_specifications.png">
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### Data Size:
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```
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dataset | # files | size
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train_features | 189078 | 215.9GB
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test_features | 63348 | 73.0GB
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train_agbm | 8689 | 2.1GB
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```
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### Contact Information:
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