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app.py
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| 1 |
+
import gradio as gr
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| 2 |
+
import cv2
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| 3 |
+
import numpy
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| 4 |
+
import os
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| 5 |
+
import random
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| 6 |
+
from basicsr.archs.rrdbnet_arch import RRDBNet
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| 7 |
+
from basicsr.utils.download_util import load_file_from_url
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| 8 |
+
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| 9 |
+
from realesrgan import RealESRGANer
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| 10 |
+
from realesrgan.archs.srvgg_arch import SRVGGNetCompact
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| 11 |
+
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| 12 |
+
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| 13 |
+
last_file = None
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| 14 |
+
img_mode = "RGBA"
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| 15 |
+
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| 16 |
+
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| 17 |
+
def realesrgan(img, model_name, denoise_strength, face_enhance, outscale):
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| 18 |
+
"""Real-ESRGAN function to restore (and upscale) images.
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| 19 |
+
"""
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| 20 |
+
if not img:
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| 21 |
+
return
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| 22 |
+
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| 23 |
+
# Define model parameters
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| 24 |
+
if model_name == 'RealESRGAN_x4plus': # x4 RRDBNet model
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| 25 |
+
model = RRDBNet(num_in_ch=3, num_out_ch=3, num_feat=64, num_block=23, num_grow_ch=32, scale=4)
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| 26 |
+
netscale = 4
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| 27 |
+
file_url = ['https://github.com/xinntao/Real-ESRGAN/releases/download/v0.1.0/RealESRGAN_x4plus.pth']
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| 28 |
+
elif model_name == 'RealESRNet_x4plus': # x4 RRDBNet model
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| 29 |
+
model = RRDBNet(num_in_ch=3, num_out_ch=3, num_feat=64, num_block=23, num_grow_ch=32, scale=4)
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| 30 |
+
netscale = 4
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| 31 |
+
file_url = ['https://github.com/xinntao/Real-ESRGAN/releases/download/v0.1.1/RealESRNet_x4plus.pth']
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| 32 |
+
elif model_name == 'RealESRGAN_x4plus_anime_6B': # x4 RRDBNet model with 6 blocks
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| 33 |
+
model = RRDBNet(num_in_ch=3, num_out_ch=3, num_feat=64, num_block=6, num_grow_ch=32, scale=4)
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| 34 |
+
netscale = 4
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| 35 |
+
file_url = ['https://github.com/xinntao/Real-ESRGAN/releases/download/v0.2.2.4/RealESRGAN_x4plus_anime_6B.pth']
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| 36 |
+
elif model_name == 'RealESRGAN_x2plus': # x2 RRDBNet model
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| 37 |
+
model = RRDBNet(num_in_ch=3, num_out_ch=3, num_feat=64, num_block=23, num_grow_ch=32, scale=2)
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| 38 |
+
netscale = 2
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| 39 |
+
file_url = ['https://github.com/xinntao/Real-ESRGAN/releases/download/v0.2.1/RealESRGAN_x2plus.pth']
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| 40 |
+
elif model_name == 'realesr-general-x4v3': # x4 VGG-style model (S size)
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| 41 |
+
model = SRVGGNetCompact(num_in_ch=3, num_out_ch=3, num_feat=64, num_conv=32, upscale=4, act_type='prelu')
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| 42 |
+
netscale = 4
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| 43 |
+
file_url = [
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| 44 |
+
'https://github.com/xinntao/Real-ESRGAN/releases/download/v0.2.5.0/realesr-general-wdn-x4v3.pth',
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| 45 |
+
'https://github.com/xinntao/Real-ESRGAN/releases/download/v0.2.5.0/realesr-general-x4v3.pth'
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| 46 |
+
]
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| 47 |
+
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| 48 |
+
# Determine model paths
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| 49 |
+
model_path = os.path.join('weights', model_name + '.pth')
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| 50 |
+
if not os.path.isfile(model_path):
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| 51 |
+
ROOT_DIR = os.path.dirname(os.path.abspath(__file__))
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| 52 |
+
for url in file_url:
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| 53 |
+
# model_path will be updated
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| 54 |
+
model_path = load_file_from_url(
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| 55 |
+
url=url, model_dir=os.path.join(ROOT_DIR, 'weights'), progress=True, file_name=None)
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| 56 |
+
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| 57 |
+
# Use dni to control the denoise strength
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| 58 |
+
dni_weight = None
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| 59 |
+
if model_name == 'realesr-general-x4v3' and denoise_strength != 1:
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| 60 |
+
wdn_model_path = model_path.replace('realesr-general-x4v3', 'realesr-general-wdn-x4v3')
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| 61 |
+
model_path = [model_path, wdn_model_path]
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| 62 |
+
dni_weight = [denoise_strength, 1 - denoise_strength]
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| 63 |
+
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| 64 |
+
# Restorer Class
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| 65 |
+
upsampler = RealESRGANer(
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| 66 |
+
scale=netscale,
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| 67 |
+
model_path=model_path,
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| 68 |
+
dni_weight=dni_weight,
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| 69 |
+
model=model,
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| 70 |
+
tile=0,
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| 71 |
+
tile_pad=10,
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| 72 |
+
pre_pad=10,
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| 73 |
+
half=False,
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| 74 |
+
gpu_id=None
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| 75 |
+
)
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| 76 |
+
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| 77 |
+
# Use GFPGAN for face enhancement
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| 78 |
+
if face_enhance:
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| 79 |
+
from gfpgan import GFPGANer
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| 80 |
+
face_enhancer = GFPGANer(
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| 81 |
+
model_path='https://github.com/TencentARC/GFPGAN/releases/download/v1.3.0/GFPGANv1.3.pth',
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| 82 |
+
upscale=outscale,
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| 83 |
+
arch='clean',
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| 84 |
+
channel_multiplier=2,
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| 85 |
+
bg_upsampler=upsampler)
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| 86 |
+
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| 87 |
+
# Convert the input PIL image to cv2 image, so that it can be processed by realesrgan
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| 88 |
+
cv_img = numpy.array(img)
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| 89 |
+
img = cv2.cvtColor(cv_img, cv2.COLOR_RGBA2BGRA)
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| 90 |
+
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| 91 |
+
# Apply restoration
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| 92 |
+
try:
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| 93 |
+
if face_enhance:
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| 94 |
+
_, _, output = face_enhancer.enhance(img, has_aligned=False, only_center_face=False, paste_back=True)
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| 95 |
+
else:
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| 96 |
+
output, _ = upsampler.enhance(img, outscale=outscale)
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| 97 |
+
except RuntimeError as error:
|
| 98 |
+
print('Error', error)
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| 99 |
+
print('If you encounter CUDA out of memory, try to set --tile with a smaller number.')
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| 100 |
+
else:
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| 101 |
+
# Save restored image and return it to the output Image component
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| 102 |
+
if img_mode == 'RGBA': # RGBA images should be saved in png format
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| 103 |
+
extension = 'png'
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| 104 |
+
else:
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| 105 |
+
extension = 'jpg'
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| 106 |
+
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| 107 |
+
out_filename = f"output_{rnd_string(8)}.{extension}"
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| 108 |
+
cv2.imwrite(out_filename, output)
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| 109 |
+
global last_file
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| 110 |
+
last_file = out_filename
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| 111 |
+
return out_filename
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| 112 |
+
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| 113 |
+
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| 114 |
+
def rnd_string(number):
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| 115 |
+
"""Returns a string of 'number' random characters
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| 116 |
+
"""
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| 117 |
+
characters = "abcdefghijklmnopqrstuvwxyz_0123456789"
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| 118 |
+
result = "".join((random.choice(characters)) for x in range(number))
|
| 119 |
+
return result
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| 120 |
+
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| 121 |
+
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| 122 |
+
def reset():
|
| 123 |
+
"""Resets the Image components of the Gradio interface and deletes
|
| 124 |
+
the last processed image
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| 125 |
+
"""
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| 126 |
+
global last_file
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| 127 |
+
if last_file:
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| 128 |
+
print(f"Deleting {last_file} ...")
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| 129 |
+
os.remove(last_file)
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| 130 |
+
last_file = None
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| 131 |
+
return gr.update(value=None), gr.update(value=None)
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| 132 |
+
|
| 133 |
+
|
| 134 |
+
def has_transparency(img):
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| 135 |
+
"""This function works by first checking to see if a "transparency" property is defined
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| 136 |
+
in the image's info -- if so, we return "True". Then, if the image is using indexed colors
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| 137 |
+
(such as in GIFs), it gets the index of the transparent color in the palette
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| 138 |
+
(img.info.get("transparency", -1)) and checks if it's used anywhere in the canvas
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| 139 |
+
(img.getcolors()). If the image is in RGBA mode, then presumably it has transparency in
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| 140 |
+
it, but it double-checks by getting the minimum and maximum values of every color channel
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| 141 |
+
(img.getextrema()), and checks if the alpha channel's smallest value falls below 255.
|
| 142 |
+
https://stackoverflow.com/questions/43864101/python-pil-check-if-image-is-transparent
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| 143 |
+
"""
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| 144 |
+
if img.info.get("transparency", None) is not None:
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| 145 |
+
return True
|
| 146 |
+
if img.mode == "P":
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| 147 |
+
transparent = img.info.get("transparency", -1)
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| 148 |
+
for _, index in img.getcolors():
|
| 149 |
+
if index == transparent:
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| 150 |
+
return True
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| 151 |
+
elif img.mode == "RGBA":
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| 152 |
+
extrema = img.getextrema()
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| 153 |
+
if extrema[3][0] < 255:
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| 154 |
+
return True
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| 155 |
+
return False
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| 156 |
+
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| 157 |
+
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| 158 |
+
def image_properties(img):
|
| 159 |
+
"""Returns the dimensions (width and height) and color mode of the input image and
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| 160 |
+
also sets the global img_mode variable to be used by the realesrgan function
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| 161 |
+
"""
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| 162 |
+
global img_mode
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| 163 |
+
if img:
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| 164 |
+
if has_transparency(img):
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| 165 |
+
img_mode = "RGBA"
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| 166 |
+
else:
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| 167 |
+
img_mode = "RGB"
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| 168 |
+
properties = f"Width: {img.size[0]}, Height: {img.size[1]} | Color Mode: {img_mode}"
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| 169 |
+
return properties
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| 170 |
+
|
| 171 |
+
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| 172 |
+
# Gradio Interface
|
| 173 |
+
with gr.Blocks(title="Real-ESRGAN Gradio Demo") as demo:
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| 174 |
+
|
| 175 |
+
gr.Markdown(
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| 176 |
+
"""# <div align="center"> Real-ESRGAN Demo for Image Restoration and Upscaling </div>
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| 177 |
+
<div align="center"><img width="200" height="74" src="https://github.com/xinntao/Real-ESRGAN/raw/master/assets/realesrgan_logo.png"></div>
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| 178 |
+
|
| 179 |
+
This Gradio Demo was built as my Final Project for **CS50's Introduction to Programming with Python**.
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| 180 |
+
Please visit the [Real-ESRGAN GitHub page](https://github.com/xinntao/Real-ESRGAN) for detailed information about the project.
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| 181 |
+
"""
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| 182 |
+
)
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| 183 |
+
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| 184 |
+
with gr.Accordion("Options/Parameters"):
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| 185 |
+
with gr.Row():
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| 186 |
+
model_name = gr.Dropdown(label="Real-ESRGAN model to be used",
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| 187 |
+
choices=["RealESRGAN_x4plus", "RealESRNet_x4plus", "RealESRGAN_x4plus_anime_6B",
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| 188 |
+
"RealESRGAN_x2plus", "realesr-general-x4v3"],
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| 189 |
+
value="realesr-general-x4v3", show_label=True)
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| 190 |
+
denoise_strength = gr.Slider(label="Denoise Strength (Used only with the realesr-general-x4v3 model)",
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| 191 |
+
minimum=0, maximum=1, step=0.1, value=0.5)
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| 192 |
+
outscale = gr.Slider(label="Image Upscaling Factor",
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| 193 |
+
minimum=1, maximum=10, step=1, value=2, show_label=True)
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| 194 |
+
face_enhance = gr.Checkbox(label="Face Enhancement using GFPGAN (Doesn't work for anime images)",
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| 195 |
+
value=False, show_label=True)
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| 196 |
+
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| 197 |
+
with gr.Row():
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| 198 |
+
with gr.Group():
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| 199 |
+
input_image = gr.Image(label="Source Image", type="pil", image_mode="RGBA")
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| 200 |
+
input_image_properties = gr.Textbox(label="Image Properties", max_lines=1)
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| 201 |
+
output_image = gr.Image(label="Restored Image", image_mode="RGBA")
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| 202 |
+
with gr.Row():
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| 203 |
+
restore_btn = gr.Button("Restore Image")
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| 204 |
+
reset_btn = gr.Button("Reset")
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| 205 |
+
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| 206 |
+
# Event listeners:
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| 207 |
+
input_image.change(fn=image_properties, inputs=input_image, outputs=input_image_properties)
|
| 208 |
+
restore_btn.click(fn=realesrgan,
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| 209 |
+
inputs=[input_image, model_name, denoise_strength, face_enhance, outscale], outputs=output_image)
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| 210 |
+
reset_btn.click(fn=reset, inputs=[], outputs=[output_image, input_image])
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| 211 |
+
# reset_btn.click(None, inputs=[], outputs=[input_image], _js="() => (null)\n")
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| 212 |
+
# Undocumented method to clear a component's value using Javascript
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| 213 |
+
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| 214 |
+
demo.launch()
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