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Update app.py
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app.py
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@@ -75,11 +75,23 @@ florence_processor = AutoProcessor.from_pretrained('microsoft/Florence-2-base',
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enhancer_medium = pipeline("summarization", model="gokaygokay/Lamini-Prompt-Enchance", device=device)
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enhancer_long = pipeline("summarization", model="gokaygokay/Lamini-Prompt-Enchance-Long", device=device)
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# Florence caption function
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def florence_caption(image):
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@@ -116,18 +128,12 @@ def enhance_prompt(input_prompt, model_choice):
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return enhanced_text
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def upscale_image(image, scale):
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# Convert PIL Image to numpy array
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img_np = np.array(image)
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if scale == 2:
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elif scale == 4:
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else:
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return image
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# Convert numpy array back to PIL Image
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return Image.fromarray(upscaled_np)
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@spaces.GPU(duration=120)
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def generate_image(additional_positive_prompt, additional_negative_prompt, height, width, num_inference_steps,
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enhancer_medium = pipeline("summarization", model="gokaygokay/Lamini-Prompt-Enchance", device=device)
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enhancer_long = pipeline("summarization", model="gokaygokay/Lamini-Prompt-Enchance-Long", device=device)
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class LazyRealESRGAN:
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def __init__(self, device, scale):
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self.device = device
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self.scale = scale
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self.model = None
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def load_model(self):
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if self.model is None:
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self.model = RealESRGAN(self.device, scale=self.scale)
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self.model.load_weights(f'models/upscalers/RealESRGAN_x{self.scale}.pth', download=False)
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def predict(self, img):
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self.load_model()
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return self.model.predict(img)
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lazy_realesrgan_x2 = LazyRealESRGAN(device, scale=2)
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lazy_realesrgan_x4 = LazyRealESRGAN(device, scale=4)
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# Florence caption function
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def florence_caption(image):
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return enhanced_text
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def upscale_image(image, scale):
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if scale == 2:
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return lazy_realesrgan_x2.predict(image)
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elif scale == 4:
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return lazy_realesrgan_x4.predict(image)
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else:
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return image
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@spaces.GPU(duration=120)
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def generate_image(additional_positive_prompt, additional_negative_prompt, height, width, num_inference_steps,
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