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import math |
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import random |
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from PIL import Image |
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import blobfile as bf |
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from mpi4py import MPI |
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import numpy as np |
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from torch.utils.data import DataLoader, Dataset |
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def load_data( |
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*, |
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data_dir, |
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batch_size, |
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image_size, |
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class_cond=False, |
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deterministic=False, |
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random_crop=False, |
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random_flip=True, |
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): |
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""" |
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For a dataset, create a generator over (images, kwargs) pairs. |
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Each images is an NCHW float tensor, and the kwargs dict contains zero or |
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more keys, each of which map to a batched Tensor of their own. |
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The kwargs dict can be used for class labels, in which case the key is "y" |
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and the values are integer tensors of class labels. |
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:param data_dir: a dataset directory. |
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:param batch_size: the batch size of each returned pair. |
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:param image_size: the size to which images are resized. |
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:param class_cond: if True, include a "y" key in returned dicts for class |
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label. If classes are not available and this is true, an |
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exception will be raised. |
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:param deterministic: if True, yield results in a deterministic order. |
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:param random_crop: if True, randomly crop the images for augmentation. |
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:param random_flip: if True, randomly flip the images for augmentation. |
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""" |
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if not data_dir: |
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raise ValueError("unspecified data directory") |
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all_files = _list_image_files_recursively(data_dir) |
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classes = None |
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if class_cond: |
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class_names = [bf.basename(path).split("_")[0] for path in all_files] |
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sorted_classes = {x: i for i, x in enumerate(sorted(set(class_names)))} |
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classes = [sorted_classes[x] for x in class_names] |
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dataset = ImageDataset( |
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image_size, |
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all_files, |
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classes=classes, |
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shard=MPI.COMM_WORLD.Get_rank(), |
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num_shards=MPI.COMM_WORLD.Get_size(), |
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random_crop=random_crop, |
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random_flip=random_flip, |
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) |
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if deterministic: |
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loader = DataLoader( |
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dataset, batch_size=batch_size, shuffle=False, num_workers=1, drop_last=True |
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) |
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else: |
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loader = DataLoader( |
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dataset, batch_size=batch_size, shuffle=True, num_workers=1, drop_last=True |
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) |
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while True: |
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yield from loader |
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def _list_image_files_recursively(data_dir): |
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results = [] |
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for entry in sorted(bf.listdir(data_dir)): |
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full_path = bf.join(data_dir, entry) |
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ext = entry.split(".")[-1] |
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if "." in entry and ext.lower() in ["jpg", "jpeg", "png", "gif"]: |
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results.append(full_path) |
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elif bf.isdir(full_path): |
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results.extend(_list_image_files_recursively(full_path)) |
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return results |
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class ImageDataset(Dataset): |
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def __init__( |
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self, |
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resolution, |
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image_paths, |
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classes=None, |
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shard=0, |
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num_shards=1, |
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random_crop=False, |
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random_flip=True, |
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): |
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super().__init__() |
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self.resolution = resolution |
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self.local_images = image_paths[shard:][::num_shards] |
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self.local_classes = None if classes is None else classes[shard:][::num_shards] |
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self.random_crop = random_crop |
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self.random_flip = random_flip |
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def __len__(self): |
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return len(self.local_images) |
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def __getitem__(self, idx): |
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path = self.local_images[idx] |
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with bf.BlobFile(path, "rb") as f: |
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pil_image = Image.open(f) |
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pil_image.load() |
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pil_image = pil_image.convert("RGB") |
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if self.random_crop: |
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arr = random_crop_arr(pil_image, self.resolution) |
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else: |
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arr = center_crop_arr(pil_image, self.resolution) |
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if self.random_flip and random.random() < 0.5: |
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arr = arr[:, ::-1] |
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arr = arr.astype(np.float32) / 127.5 - 1 |
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out_dict = {} |
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if self.local_classes is not None: |
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out_dict["y"] = np.array(self.local_classes[idx], dtype=np.int64) |
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return np.transpose(arr, [2, 0, 1]), out_dict |
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def center_crop_arr(pil_image, image_size): |
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while min(*pil_image.size) >= 2 * image_size: |
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pil_image = pil_image.resize( |
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tuple(x // 2 for x in pil_image.size), resample=Image.BOX |
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) |
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scale = image_size / min(*pil_image.size) |
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pil_image = pil_image.resize( |
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tuple(round(x * scale) for x in pil_image.size), resample=Image.BICUBIC |
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) |
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arr = np.array(pil_image) |
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crop_y = (arr.shape[0] - image_size) // 2 |
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crop_x = (arr.shape[1] - image_size) // 2 |
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return arr[crop_y : crop_y + image_size, crop_x : crop_x + image_size] |
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def random_crop_arr(pil_image, image_size, min_crop_frac=0.8, max_crop_frac=1.0): |
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min_smaller_dim_size = math.ceil(image_size / max_crop_frac) |
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max_smaller_dim_size = math.ceil(image_size / min_crop_frac) |
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smaller_dim_size = random.randrange(min_smaller_dim_size, max_smaller_dim_size + 1) |
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while min(*pil_image.size) >= 2 * smaller_dim_size: |
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pil_image = pil_image.resize( |
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tuple(x // 2 for x in pil_image.size), resample=Image.BOX |
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) |
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scale = smaller_dim_size / min(*pil_image.size) |
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pil_image = pil_image.resize( |
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tuple(round(x * scale) for x in pil_image.size), resample=Image.BICUBIC |
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) |
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arr = np.array(pil_image) |
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crop_y = random.randrange(arr.shape[0] - image_size + 1) |
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crop_x = random.randrange(arr.shape[1] - image_size + 1) |
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return arr[crop_y : crop_y + image_size, crop_x : crop_x + image_size] |
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