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preprocess.py
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preprocess.py
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from os.path import join
import argparse
from PIL import Image
from torchvision import transforms
import torch
def preprocess(data_dir, split):
assert split in ["train", "validate", "test"]
print("Process {} dataset...".format(split))
images_dir = join(data_dir, "formula_images_processed")
formulas_file = join(data_dir, "im2latex_formulas.norm.lst")
with open(formulas_file, 'r') as f:
formulas = [formula.strip('\n') for formula in f.readlines()]
split_file = join(data_dir, "im2latex_{}_filter.lst".format(split))
pairs = []
transform = transforms.ToTensor()
with open(split_file, 'r') as f:
for line in f:
img_name, formula_id = line.strip('\n').split()
img_path = join(images_dir, img_name)
img = Image.open(img_path)
img_tensor = transform(img)
formula = formulas[int(formula_id)]
pair = (img_tensor, formula)
pairs.append(pair)
pairs.sort(key=img_size)
out_file = join(data_dir, "{}.pkl".format(split))
# print(pairs)
torch.save(pairs, out_file)
print("Save {} dataset to {}".format(split, out_file))
def img_size(pair):
img, formula = pair
return tuple(img.size())
if __name__ == "__main__":
parser = argparse.ArgumentParser(
description="Im2Latex Data Preprocess Program")
parser.add_argument("--data_path", type=str,
default="./data/", help="The dataset's dir")
args = parser.parse_args()
splits = ["validate", "test", "train"]
for s in splits:
preprocess(args.data_path, s)