Create fashion.cod
Browse files- fashion.cod +273 -0
fashion.cod
ADDED
@@ -0,0 +1,273 @@
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1 |
+
import spaces
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2 |
+
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3 |
+
import gradio as gr
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4 |
+
import os
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5 |
+
from pathlib import Path
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6 |
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import sys
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7 |
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import torch
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8 |
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from PIL import Image, ImageOps
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9 |
+
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10 |
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from utils_ootd import get_mask_location
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11 |
+
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12 |
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PROJECT_ROOT = Path(__file__).absolute().parents[1].absolute()
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13 |
+
sys.path.insert(0, str(PROJECT_ROOT))
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14 |
+
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15 |
+
from preprocess.openpose.run_openpose import OpenPose
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16 |
+
from preprocess.humanparsing.run_parsing import Parsing
|
17 |
+
from ootd.inference_ootd_hd import OOTDiffusionHD
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18 |
+
from ootd.inference_ootd_dc import OOTDiffusionDC
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19 |
+
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20 |
+
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21 |
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openpose_model_hd = OpenPose(0)
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22 |
+
parsing_model_hd = Parsing(0)
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23 |
+
ootd_model_hd = OOTDiffusionHD(0)
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24 |
+
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25 |
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openpose_model_dc = OpenPose(1)
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26 |
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parsing_model_dc = Parsing(1)
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ootd_model_dc = OOTDiffusionDC(1)
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28 |
+
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29 |
+
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30 |
+
category_dict = ['upperbody', 'lowerbody', 'dress']
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31 |
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category_dict_utils = ['upper_body', 'lower_body', 'dresses']
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32 |
+
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33 |
+
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34 |
+
example_path = os.path.join(os.path.dirname(__file__), 'examples')
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35 |
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model_hd = os.path.join(example_path, 'model/model_1.png')
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36 |
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garment_hd = os.path.join(example_path, 'garment/03244_00.jpg')
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37 |
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model_dc = os.path.join(example_path, 'model/model_8.png')
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38 |
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garment_dc = os.path.join(example_path, 'garment/048554_1.jpg')
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39 |
+
|
40 |
+
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41 |
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@spaces.GPU
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42 |
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def process_hd(vton_img, garm_img, n_samples, n_steps, image_scale, seed):
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43 |
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model_type = 'hd'
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44 |
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category = 0 # 0:upperbody; 1:lowerbody; 2:dress
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45 |
+
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46 |
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with torch.no_grad():
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47 |
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openpose_model_hd.preprocessor.body_estimation.model.to('cuda')
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48 |
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ootd_model_hd.pipe.to('cuda')
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49 |
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ootd_model_hd.image_encoder.to('cuda')
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50 |
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ootd_model_hd.text_encoder.to('cuda')
|
51 |
+
|
52 |
+
garm_img = Image.open(garm_img).resize((768, 1024))
|
53 |
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vton_img = Image.open(vton_img).resize((768, 1024))
|
54 |
+
keypoints = openpose_model_hd(vton_img.resize((384, 512)))
|
55 |
+
model_parse, _ = parsing_model_hd(vton_img.resize((384, 512)))
|
56 |
+
|
57 |
+
mask, mask_gray = get_mask_location(model_type, category_dict_utils[category], model_parse, keypoints)
|
58 |
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mask = mask.resize((768, 1024), Image.NEAREST)
|
59 |
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mask_gray = mask_gray.resize((768, 1024), Image.NEAREST)
|
60 |
+
|
61 |
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masked_vton_img = Image.composite(mask_gray, vton_img, mask)
|
62 |
+
|
63 |
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images = ootd_model_hd(
|
64 |
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model_type=model_type,
|
65 |
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category=category_dict[category],
|
66 |
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image_garm=garm_img,
|
67 |
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image_vton=masked_vton_img,
|
68 |
+
mask=mask,
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69 |
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image_ori=vton_img,
|
70 |
+
num_samples=n_samples,
|
71 |
+
num_steps=n_steps,
|
72 |
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image_scale=image_scale,
|
73 |
+
seed=seed,
|
74 |
+
)
|
75 |
+
|
76 |
+
return images
|
77 |
+
|
78 |
+
@spaces.GPU
|
79 |
+
def process_dc(vton_img, garm_img, category, n_samples, n_steps, image_scale, seed):
|
80 |
+
model_type = 'dc'
|
81 |
+
if category == 'Upper-body':
|
82 |
+
category = 0
|
83 |
+
elif category == 'Lower-body':
|
84 |
+
category = 1
|
85 |
+
else:
|
86 |
+
category =2
|
87 |
+
|
88 |
+
with torch.no_grad():
|
89 |
+
openpose_model_dc.preprocessor.body_estimation.model.to('cuda')
|
90 |
+
ootd_model_dc.pipe.to('cuda')
|
91 |
+
ootd_model_dc.image_encoder.to('cuda')
|
92 |
+
ootd_model_dc.text_encoder.to('cuda')
|
93 |
+
|
94 |
+
garm_img = Image.open(garm_img).resize((768, 1024))
|
95 |
+
vton_img = Image.open(vton_img).resize((768, 1024))
|
96 |
+
keypoints = openpose_model_dc(vton_img.resize((384, 512)))
|
97 |
+
model_parse, _ = parsing_model_dc(vton_img.resize((384, 512)))
|
98 |
+
|
99 |
+
mask, mask_gray = get_mask_location(model_type, category_dict_utils[category], model_parse, keypoints)
|
100 |
+
mask = mask.resize((768, 1024), Image.NEAREST)
|
101 |
+
mask_gray = mask_gray.resize((768, 1024), Image.NEAREST)
|
102 |
+
|
103 |
+
masked_vton_img = Image.composite(mask_gray, vton_img, mask)
|
104 |
+
|
105 |
+
images = ootd_model_dc(
|
106 |
+
model_type=model_type,
|
107 |
+
category=category_dict[category],
|
108 |
+
image_garm=garm_img,
|
109 |
+
image_vton=masked_vton_img,
|
110 |
+
mask=mask,
|
111 |
+
image_ori=vton_img,
|
112 |
+
num_samples=n_samples,
|
113 |
+
num_steps=n_steps,
|
114 |
+
image_scale=image_scale,
|
115 |
+
seed=seed,
|
116 |
+
)
|
117 |
+
|
118 |
+
return images
|
119 |
+
|
120 |
+
|
121 |
+
block = gr.Blocks(theme="Nymbo/Nymbo_Theme").queue()
|
122 |
+
with block:
|
123 |
+
|
124 |
+
with gr.Row():
|
125 |
+
gr.Markdown("## Half-body")
|
126 |
+
with gr.Row():
|
127 |
+
gr.Markdown("***Support upper-body garments***")
|
128 |
+
with gr.Row():
|
129 |
+
with gr.Column():
|
130 |
+
vton_img = gr.Image(label="Model", sources='upload', type="filepath", height=384, value=model_hd)
|
131 |
+
example = gr.Examples(
|
132 |
+
inputs=vton_img,
|
133 |
+
examples_per_page=14,
|
134 |
+
examples=[
|
135 |
+
os.path.join(example_path, 'model/model_1.png'),
|
136 |
+
os.path.join(example_path, 'model/model_2.png'),
|
137 |
+
os.path.join(example_path, 'model/model_3.png'),
|
138 |
+
os.path.join(example_path, 'model/model_4.png'),
|
139 |
+
os.path.join(example_path, 'model/model_5.png'),
|
140 |
+
os.path.join(example_path, 'model/model_6.png'),
|
141 |
+
os.path.join(example_path, 'model/model_7.png'),
|
142 |
+
os.path.join(example_path, 'model/01008_00.jpg'),
|
143 |
+
os.path.join(example_path, 'model/07966_00.jpg'),
|
144 |
+
os.path.join(example_path, 'model/05997_00.jpg'),
|
145 |
+
os.path.join(example_path, 'model/02849_00.jpg'),
|
146 |
+
os.path.join(example_path, 'model/14627_00.jpg'),
|
147 |
+
os.path.join(example_path, 'model/09597_00.jpg'),
|
148 |
+
os.path.join(example_path, 'model/01861_00.jpg'),
|
149 |
+
])
|
150 |
+
with gr.Column():
|
151 |
+
garm_img = gr.Image(label="Garment", sources='upload', type="filepath", height=384, value=garment_hd)
|
152 |
+
example = gr.Examples(
|
153 |
+
inputs=garm_img,
|
154 |
+
examples_per_page=14,
|
155 |
+
examples=[
|
156 |
+
os.path.join(example_path, 'garment/03244_00.jpg'),
|
157 |
+
os.path.join(example_path, 'garment/00126_00.jpg'),
|
158 |
+
os.path.join(example_path, 'garment/03032_00.jpg'),
|
159 |
+
os.path.join(example_path, 'garment/06123_00.jpg'),
|
160 |
+
os.path.join(example_path, 'garment/02305_00.jpg'),
|
161 |
+
os.path.join(example_path, 'garment/00055_00.jpg'),
|
162 |
+
os.path.join(example_path, 'garment/00470_00.jpg'),
|
163 |
+
os.path.join(example_path, 'garment/02015_00.jpg'),
|
164 |
+
os.path.join(example_path, 'garment/10297_00.jpg'),
|
165 |
+
os.path.join(example_path, 'garment/07382_00.jpg'),
|
166 |
+
os.path.join(example_path, 'garment/07764_00.jpg'),
|
167 |
+
os.path.join(example_path, 'garment/00151_00.jpg'),
|
168 |
+
os.path.join(example_path, 'garment/12562_00.jpg'),
|
169 |
+
os.path.join(example_path, 'garment/04825_00.jpg'),
|
170 |
+
])
|
171 |
+
with gr.Column():
|
172 |
+
result_gallery = gr.Gallery(label='Output', show_label=False, elem_id="gallery", preview=True, scale=1)
|
173 |
+
with gr.Column():
|
174 |
+
run_button = gr.Button(value="Run")
|
175 |
+
n_samples = gr.Slider(label="Images", minimum=1, maximum=4, value=1, step=1)
|
176 |
+
n_steps = gr.Slider(label="Steps", minimum=20, maximum=40, value=20, step=1)
|
177 |
+
# scale = gr.Slider(label="Scale", minimum=1.0, maximum=12.0, value=5.0, step=0.1)
|
178 |
+
image_scale = gr.Slider(label="Guidance scale", minimum=1.0, maximum=5.0, value=2.0, step=0.1)
|
179 |
+
seed = gr.Slider(label="Seed", minimum=-1, maximum=2147483647, step=1, value=-1)
|
180 |
+
|
181 |
+
ips = [vton_img, garm_img, n_samples, n_steps, image_scale, seed]
|
182 |
+
run_button.click(fn=process_hd, inputs=ips, outputs=[result_gallery])
|
183 |
+
|
184 |
+
|
185 |
+
with gr.Row():
|
186 |
+
gr.Markdown("## Full-body")
|
187 |
+
with gr.Row():
|
188 |
+
gr.Markdown("***Support upper-body/lower-body/dresses; garment category must be paired!!!***")
|
189 |
+
with gr.Row():
|
190 |
+
with gr.Column():
|
191 |
+
vton_img_dc = gr.Image(label="Model", sources='upload', type="filepath", height=384, value=model_dc)
|
192 |
+
example = gr.Examples(
|
193 |
+
label="Examples (upper-body/lower-body)",
|
194 |
+
inputs=vton_img_dc,
|
195 |
+
examples_per_page=7,
|
196 |
+
examples=[
|
197 |
+
os.path.join(example_path, 'model/model_8.png'),
|
198 |
+
os.path.join(example_path, 'model/049447_0.jpg'),
|
199 |
+
os.path.join(example_path, 'model/049713_0.jpg'),
|
200 |
+
os.path.join(example_path, 'model/051482_0.jpg'),
|
201 |
+
os.path.join(example_path, 'model/051918_0.jpg'),
|
202 |
+
os.path.join(example_path, 'model/051962_0.jpg'),
|
203 |
+
os.path.join(example_path, 'model/049205_0.jpg'),
|
204 |
+
])
|
205 |
+
example = gr.Examples(
|
206 |
+
label="Examples (dress)",
|
207 |
+
inputs=vton_img_dc,
|
208 |
+
examples_per_page=7,
|
209 |
+
examples=[
|
210 |
+
os.path.join(example_path, 'model/model_9.png'),
|
211 |
+
os.path.join(example_path, 'model/052767_0.jpg'),
|
212 |
+
os.path.join(example_path, 'model/052472_0.jpg'),
|
213 |
+
os.path.join(example_path, 'model/053514_0.jpg'),
|
214 |
+
os.path.join(example_path, 'model/053228_0.jpg'),
|
215 |
+
os.path.join(example_path, 'model/052964_0.jpg'),
|
216 |
+
os.path.join(example_path, 'model/053700_0.jpg'),
|
217 |
+
])
|
218 |
+
with gr.Column():
|
219 |
+
garm_img_dc = gr.Image(label="Garment", sources='upload', type="filepath", height=384, value=garment_dc)
|
220 |
+
category_dc = gr.Dropdown(label="Garment category (important option!!!)", choices=["Upper-body", "Lower-body", "Dress"], value="Upper-body")
|
221 |
+
example = gr.Examples(
|
222 |
+
label="Examples (upper-body)",
|
223 |
+
inputs=garm_img_dc,
|
224 |
+
examples_per_page=7,
|
225 |
+
examples=[
|
226 |
+
os.path.join(example_path, 'garment/048554_1.jpg'),
|
227 |
+
os.path.join(example_path, 'garment/049920_1.jpg'),
|
228 |
+
os.path.join(example_path, 'garment/049965_1.jpg'),
|
229 |
+
os.path.join(example_path, 'garment/049949_1.jpg'),
|
230 |
+
os.path.join(example_path, 'garment/050181_1.jpg'),
|
231 |
+
os.path.join(example_path, 'garment/049805_1.jpg'),
|
232 |
+
os.path.join(example_path, 'garment/050105_1.jpg'),
|
233 |
+
])
|
234 |
+
example = gr.Examples(
|
235 |
+
label="Examples (lower-body)",
|
236 |
+
inputs=garm_img_dc,
|
237 |
+
examples_per_page=7,
|
238 |
+
examples=[
|
239 |
+
os.path.join(example_path, 'garment/051827_1.jpg'),
|
240 |
+
os.path.join(example_path, 'garment/051946_1.jpg'),
|
241 |
+
os.path.join(example_path, 'garment/051473_1.jpg'),
|
242 |
+
os.path.join(example_path, 'garment/051515_1.jpg'),
|
243 |
+
os.path.join(example_path, 'garment/051517_1.jpg'),
|
244 |
+
os.path.join(example_path, 'garment/051988_1.jpg'),
|
245 |
+
os.path.join(example_path, 'garment/051412_1.jpg'),
|
246 |
+
])
|
247 |
+
example = gr.Examples(
|
248 |
+
label="Examples (dress)",
|
249 |
+
inputs=garm_img_dc,
|
250 |
+
examples_per_page=7,
|
251 |
+
examples=[
|
252 |
+
os.path.join(example_path, 'garment/053290_1.jpg'),
|
253 |
+
os.path.join(example_path, 'garment/053744_1.jpg'),
|
254 |
+
os.path.join(example_path, 'garment/053742_1.jpg'),
|
255 |
+
os.path.join(example_path, 'garment/053786_1.jpg'),
|
256 |
+
os.path.join(example_path, 'garment/053790_1.jpg'),
|
257 |
+
os.path.join(example_path, 'garment/053319_1.jpg'),
|
258 |
+
os.path.join(example_path, 'garment/052234_1.jpg'),
|
259 |
+
])
|
260 |
+
with gr.Column():
|
261 |
+
result_gallery_dc = gr.Gallery(label='Output', show_label=False, elem_id="gallery", preview=True, scale=1)
|
262 |
+
with gr.Column():
|
263 |
+
run_button_dc = gr.Button(value="Run")
|
264 |
+
n_samples_dc = gr.Slider(label="Images", minimum=1, maximum=4, value=1, step=1)
|
265 |
+
n_steps_dc = gr.Slider(label="Steps", minimum=20, maximum=40, value=20, step=1)
|
266 |
+
# scale_dc = gr.Slider(label="Scale", minimum=1.0, maximum=12.0, value=5.0, step=0.1)
|
267 |
+
image_scale_dc = gr.Slider(label="Guidance scale", minimum=1.0, maximum=5.0, value=2.0, step=0.1)
|
268 |
+
seed_dc = gr.Slider(label="Seed", minimum=-1, maximum=2147483647, step=1, value=-1)
|
269 |
+
|
270 |
+
ips_dc = [vton_img_dc, garm_img_dc, category_dc, n_samples_dc, n_steps_dc, image_scale_dc, seed_dc]
|
271 |
+
run_button_dc.click(fn=process_dc, inputs=ips_dc, outputs=[result_gallery_dc])
|
272 |
+
|
273 |
+
block.launch()
|