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prepropess_data.py
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prepropess_data.py
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#!/usr/bin/python
# -*- encoding: utf-8 -*-
import os.path as osp
import os
import cv2
from transform import *
from PIL import Image
face_data = '/home/zll/data/CelebAMask-HQ/CelebA-HQ-img'
face_sep_mask = '/home/zll/data/CelebAMask-HQ/CelebAMask-HQ-mask-anno'
mask_path = '/home/zll/data/CelebAMask-HQ/mask'
counter = 0
total = 0
for i in range(15):
atts = ['skin', 'l_brow', 'r_brow', 'l_eye', 'r_eye', 'eye_g', 'l_ear', 'r_ear', 'ear_r',
'nose', 'mouth', 'u_lip', 'l_lip', 'neck', 'neck_l', 'cloth', 'hair', 'hat']
for j in range(i * 2000, (i + 1) * 2000):
mask = np.zeros((512, 512))
for l, att in enumerate(atts, 1):
total += 1
file_name = ''.join([str(j).rjust(5, '0'), '_', att, '.png'])
path = osp.join(face_sep_mask, str(i), file_name)
if os.path.exists(path):
counter += 1
sep_mask = np.array(Image.open(path).convert('P'))
# print(np.unique(sep_mask))
mask[sep_mask == 225] = l
cv2.imwrite('{}/{}.png'.format(mask_path, j), mask)
print(j)
print(counter, total)