Update app.py
Browse files
app.py
CHANGED
@@ -1,4 +1,4 @@
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import spaces
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import contextlib
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import gc
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import json
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@@ -173,7 +173,7 @@ examples = [
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global pipeline
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global MultiResNetModel
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def load_ckpt(input_style):
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global pipeline
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global MultiResNetModel
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@@ -264,7 +264,7 @@ cur_input_style = "GrayImage(ScreenStyle)"
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load_ckpt(cur_input_style)
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cur_input_style = None
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def fix_random_seeds(seed):
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random.seed(seed)
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np.random.seed(seed)
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@@ -280,7 +280,7 @@ def process_multi_images(files):
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imgs.append(img)
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return imgs
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-
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def extract_lines(image):
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src = cv2.cvtColor(np.array(image), cv2.COLOR_RGB2GRAY)
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@@ -305,7 +305,7 @@ def extract_lines(image):
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torch.cuda.empty_cache()
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return outimg
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def to_screen_image(input_image):
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global opt
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global ScreenModel
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@@ -321,7 +321,7 @@ def to_screen_image(input_image):
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torch.cuda.empty_cache()
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return image_pil
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def extract_line_image(query_image_, input_style, resolution):
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if resolution == "640x640":
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tar_width = 640
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@@ -348,7 +348,7 @@ def extract_line_image(query_image_, input_style, resolution):
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torch.cuda.empty_cache()
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return input_context, extracted_line, input_context
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def colorize_image(VAE_input, input_context, reference_images, resolution, seed, input_style, num_inference_steps):
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if VAE_input is None or input_context is None:
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gr.Info("Please preprocess the image first")
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@@ -543,4 +543,4 @@ with gr.Blocks() as demo:
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# )
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demo.launch()
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#import spaces
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import contextlib
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import gc
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import json
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global pipeline
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global MultiResNetModel
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#@spaces.GPU
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def load_ckpt(input_style):
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global pipeline
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global MultiResNetModel
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load_ckpt(cur_input_style)
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cur_input_style = None
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#@spaces.GPU
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def fix_random_seeds(seed):
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random.seed(seed)
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np.random.seed(seed)
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imgs.append(img)
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return imgs
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#@spaces.GPU
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def extract_lines(image):
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src = cv2.cvtColor(np.array(image), cv2.COLOR_RGB2GRAY)
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torch.cuda.empty_cache()
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return outimg
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#@spaces.GPU
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def to_screen_image(input_image):
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global opt
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global ScreenModel
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torch.cuda.empty_cache()
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return image_pil
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#@spaces.GPU
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def extract_line_image(query_image_, input_style, resolution):
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if resolution == "640x640":
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tar_width = 640
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torch.cuda.empty_cache()
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return input_context, extracted_line, input_context
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#@spaces.GPU(duration=180)
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def colorize_image(VAE_input, input_context, reference_images, resolution, seed, input_style, num_inference_steps):
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if VAE_input is None or input_context is None:
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gr.Info("Please preprocess the image first")
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# )
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demo.launch(share = True)
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