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import os |
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import json |
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import shutil |
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import tifffile |
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import datasets |
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import pandas as pd |
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import numpy as np |
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S2_MEAN = [1370.19151926, 1184.3824625, 1120.77120066, 1136.26026392, 1263.73947144, 1645.40315151, 1846.87040806, 1762.59530783, 1972.62420416, 582.72633433, 14.77112979, 1732.16362238, 1247.91870117] |
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S2_STD = [633.15169573, 650.2842772, 712.12507725, 965.23119807, 948.9819932, 1108.06650639, 1258.36394548, 1233.1492281, 1364.38688993, 472.37967789, 14.3114637, 1310.36996126, 1087.6020813] |
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S1_MEAN = [-12.54847273, -20.19237134] |
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S1_STD = [5.25697717, 5.91150917] |
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class DFC2020Dataset(datasets.GeneratorBasedBuilder): |
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VERSION = datasets.Version("1.0.0") |
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DATA_URL = "https://huggingface.co/datasets/GFM-Bench/DFC2020/resolve/main/data/DFC2020.zip" |
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metadata = { |
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"s2c": { |
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"bands": ["B1", "B2", "B3", "B4", "B5", "B6", "B7", "B8", "B8A", "B9", "B10", "B11", "B12"], |
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"channel_wv": [442.7, 492.4, 559.8, 664.6, 704.1, 740.5, 782.8, 832.8, 864.7, 945.1, 1373.5, 1613.7, 2202.4], |
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"mean": S2_MEAN, |
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"std": S2_STD, |
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}, |
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"s1": { |
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"bands": ["VV", "VH"], |
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"channel_wv": [5500, 5700], |
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"mean": S1_MEAN, |
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"std": S1_STD |
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} |
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} |
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SIZE = HEIGHT = WIDTH = 96 |
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spatial_resolution = 10 |
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DFC2020_CLASSES = [ |
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255, |
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0, 0, 0, 0, 0, |
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1, 1, |
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255, |
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255, |
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2, |
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3, |
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4, |
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5, |
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4, |
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255, |
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6, |
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7 |
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] |
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NUM_CLASSES = 8 |
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def __init__(self, *args, **kwargs): |
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super().__init__(*args, **kwargs) |
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def _info(self): |
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metadata = self.metadata |
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metadata['size'] = self.SIZE |
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metadata['num_classes'] = self.NUM_CLASSES |
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metadata['spatial_resolution'] = self.spatial_resolution |
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return datasets.DatasetInfo( |
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description=json.dumps(metadata), |
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features=datasets.Features({ |
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"optical": datasets.Array3D(shape=(13, self.HEIGHT, self.WIDTH), dtype="float32"), |
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"radar": datasets.Array3D(shape=(2, self.HEIGHT, self.WIDTH), dtype="float32"), |
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"label": datasets.Array2D(shape=(self.HEIGHT, self.WIDTH), dtype="int32"), |
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"optical_channel_wv": datasets.Sequence(datasets.Value("float32")), |
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"radar_channel_wv": datasets.Sequence(datasets.Value("float32")), |
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"spatial_resolution": datasets.Value("int32"), |
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}), |
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) |
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def _split_generators(self, dl_manager): |
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if isinstance(self.DATA_URL, list): |
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downloaded_files = dl_manager.download(self.DATA_URL) |
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combined_file = os.path.join(dl_manager.download_config.cache_dir, "combined.tar.gz") |
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with open(combined_file, 'wb') as outfile: |
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for part_file in downloaded_files: |
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with open(part_file, 'rb') as infile: |
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shutil.copyfileobj(infile, outfile) |
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data_dir = dl_manager.extract(combined_file) |
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os.remove(combined_file) |
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else: |
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data_dir = dl_manager.download_and_extract(self.DATA_URL) |
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return [ |
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datasets.SplitGenerator( |
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name="train", |
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gen_kwargs={ |
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"split": 'train', |
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"data_dir": data_dir, |
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}, |
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), |
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datasets.SplitGenerator( |
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name="val", |
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gen_kwargs={ |
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"split": 'val', |
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"data_dir": data_dir, |
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}, |
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), |
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datasets.SplitGenerator( |
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name="test", |
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gen_kwargs={ |
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"split": 'test', |
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"data_dir": data_dir, |
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}, |
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) |
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] |
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def _generate_examples(self, split, data_dir): |
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optical_channel_wv = self.metadata["s2c"]["channel_wv"] |
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radar_channel_wv = self.metadata["s1"]["channel_wv"] |
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spatial_resolution = self.spatial_resolution |
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data_dir = os.path.join(data_dir, "DFC2020") |
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metadata = pd.read_csv(os.path.join(data_dir, "metadata.csv")) |
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metadata = metadata[metadata["split"] == split].reset_index(drop=True) |
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for index, row in metadata.iterrows(): |
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optical_path = os.path.join(data_dir, row.optical_path) |
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optical = self._read_image(optical_path).astype(np.float32) |
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radar_path = os.path.join(data_dir, row.radar_path) |
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radar = self._read_image(radar_path).astype(np.float32) |
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label_path = os.path.join(data_dir, row.label_path) |
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label = self._read_image(label_path)[0, :, :] |
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label = np.take(self.DFC2020_CLASSES, label.astype(np.int64)) |
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label = label.astype(np.int32) |
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sample = { |
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"optical": optical, |
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"radar": radar, |
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"optical_channel_wv": optical_channel_wv, |
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"radar_channel_wv": radar_channel_wv, |
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"label": label, |
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"spatial_resolution": spatial_resolution, |
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} |
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yield f"{index}", sample |
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def _read_image(self, image_path): |
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"""Read tiff image from image_path |
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Args: |
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image_path: |
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Image path to read from |
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Return: |
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image: |
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C, H, W numpy array image |
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""" |
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image = tifffile.imread(image_path) |
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image = np.transpose(image, (2, 0, 1)) |
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return image |