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README.md
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@@ -49,9 +49,9 @@ Finetuning the geospatial foundation model for 100 epochs leads to the following
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| No water | 96.90% | 98.11% |
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| Water/Flood | 80.46% | 90.54% |
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The performance of the model has been further validated on an unseen, holdout flood event in Bolivia. The results are consistent with the performance on the test set:
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| No water | 95.37% | 97.39% |
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| Water/Flood | 77.95% | 88.74% |
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Finetuning took ~1 hour on
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### Inference
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The github repo includes an inference script that allows
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| No water | 96.90% | 98.11% |
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| Water/Flood | 80.46% | 90.54% |
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| **aAcc** |**mIoU**|**mAcc**|
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|:------------------:|:------:|:------:|
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| 97.25% | 88.68% | 94.37% |
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The performance of the model has been further validated on an unseen, holdout flood event in Bolivia. The results are consistent with the performance on the test set:
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| No water | 95.37% | 97.39% |
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| Water/Flood | 77.95% | 88.74% |
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| **aAcc** |**mIoU**|**mAcc**|
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|:------------------:|:------:|:------:|
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| 96.02% | 86.66% | 93.07% |
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Finetuning took ~1 hour on an NVIDIA V100.
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### Inference
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The github repo includes an inference script that allows running the flood mapping model for inference on Sentinel-2 images. These inputs have to be geotiff format, including 6 bands for a single time-step described above (Blue, Green, Red, Narrow NIR, SWIR, SWIR 2) in order. There is also a **demo** that leverages the same code **[here](https://huggingface.co/spaces/ibm-nasa-geospatial/Prithvi-100M-sen1floods11-demo)**.
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