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Running
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Added Option to select where to align the base image. (#7)
Browse files- Added Option to select where to align the base image. (07baece5cb7768ed8cec71fed442f785bdda15c4)
Co-authored-by: Nishith Jain <KingNish@users.noreply.huggingface.co>
app.py
CHANGED
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@@ -12,10 +12,6 @@ from pipeline_fill_sd_xl import StableDiffusionXLFillPipeline
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from PIL import Image, ImageDraw
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import numpy as np
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MODELS = {
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"RealVisXL V5.0 Lightning": "SG161222/RealVisXL_V5.0_Lightning",
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}
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config_file = hf_hub_download(
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"xinsir/controlnet-union-sdxl-1.0",
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filename="config_promax.json",
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@@ -48,11 +44,20 @@ pipe = StableDiffusionXLFillPipeline.from_pretrained(
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pipe.scheduler = TCDScheduler.from_config(pipe.scheduler.config)
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@spaces.GPU
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def infer(image,
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source = image
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target_size = (width, height)
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target_ratio = (width, height) # Calculate aspect ratio from width and height
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overlap = overlap_width
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# Upscale if source is smaller than target in both dimensions
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@@ -68,25 +73,63 @@ def infer(image, model_selection, width, height, overlap_width, num_inference_st
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new_height = int(source.height * scale_factor)
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source = source.resize((new_width, new_height), Image.LANCZOS)
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-
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background = Image.new('RGB', target_size, (255, 255, 255))
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background.paste(source, (margin_x, margin_y))
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mask = Image.new('L', target_size, 255)
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mask_draw = ImageDraw.Draw(mask)
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cnet_image = background.copy()
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cnet_image.paste(0, (0, 0), mask)
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final_prompt = "high quality"
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if prompt_input.strip() != "":
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final_prompt += ", " + prompt_input
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(
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prompt_embeds,
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@@ -110,7 +153,14 @@ def infer(image, model_selection, width, height, overlap_width, num_inference_st
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yield background, cnet_image
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def preload_presets(target_ratio):
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if target_ratio == "9:16":
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changed_width = 720
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changed_height = 1280
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@@ -122,9 +172,6 @@ def preload_presets(target_ratio):
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elif target_ratio == "Custom":
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return 720, 1280, gr.update(open=True)
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def clear_result():
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return gr.update(value=None)
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-
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css = """
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.gradio-container {
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@@ -152,63 +199,64 @@ with gr.Blocks(css=css) as demo:
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with gr.Column():
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input_image = gr.Image(
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type="pil",
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label="Input Image"
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sources=["upload"],
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height = 300
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)
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-
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with gr.Row():
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target_ratio = gr.Radio(
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label
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choices
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value
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scale
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)
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with gr.Accordion(label="Advanced settings", open=False) as settings_panel:
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with gr.Column():
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with gr.Row():
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width_slider = gr.Slider(
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label="Width",
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minimum=720,
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maximum=
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step=8,
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value=720, # Set a default value
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)
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height_slider = gr.Slider(
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label="Height",
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minimum=720,
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maximum=
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step=8,
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value=1280, # Set a default value
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)
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with gr.Row():
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-
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)
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overlap_width = gr.Slider(
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label="Mask overlap width",
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minimum=1,
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maximum=50,
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value=42,
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step=1
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)
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gr.Examples(
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examples=[
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["./examples/example_1.webp",
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["./examples/example_2.jpg",
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["./examples/example_3.jpg",
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],
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inputs=[input_image,
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)
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with gr.Column():
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@@ -216,21 +264,38 @@ with gr.Blocks(css=css) as demo:
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interactive=False,
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label="Generated Image",
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)
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target_ratio.change(
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fn
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inputs
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outputs
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queue
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)
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run_button.click(
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fn=clear_result,
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inputs=None,
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outputs=result,
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).then(
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fn=infer,
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inputs=[input_image,
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outputs=result,
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)
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prompt_input.submit(
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@@ -239,8 +304,14 @@ with gr.Blocks(css=css) as demo:
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outputs=result,
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).then(
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fn=infer,
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inputs=[input_image,
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outputs=result,
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)
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-
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from PIL import Image, ImageDraw
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import numpy as np
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config_file = hf_hub_download(
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"xinsir/controlnet-union-sdxl-1.0",
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filename="config_promax.json",
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pipe.scheduler = TCDScheduler.from_config(pipe.scheduler.config)
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def can_expand(source_width, source_height, target_width, target_height, alignment):
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"""Checks if the image can be expanded based on the alignment."""
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if alignment in ("Left", "Right") and source_width >= target_width:
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return False
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if alignment in ("Top", "Bottom") and source_height >= target_height:
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return False
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return True
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@spaces.GPU
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def infer(image, width, height, overlap_width, num_inference_steps, prompt_input=None, alignment="Middle"):
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source = image
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target_size = (width, height)
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overlap = overlap_width
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# Upscale if source is smaller than target in both dimensions
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new_height = int(source.height * scale_factor)
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source = source.resize((new_width, new_height), Image.LANCZOS)
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if not can_expand(source.width, source.height, target_size[0], target_size[1], alignment):
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alignment = "Middle"
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# Calculate margins based on alignment
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if alignment == "Middle":
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margin_x = (target_size[0] - source.width) // 2
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margin_y = (target_size[1] - source.height) // 2
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elif alignment == "Left":
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margin_x = 0
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margin_y = (target_size[1] - source.height) // 2
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elif alignment == "Right":
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margin_x = target_size[0] - source.width
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margin_y = (target_size[1] - source.height) // 2
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elif alignment == "Top":
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margin_x = (target_size[0] - source.width) // 2
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margin_y = 0
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elif alignment == "Bottom":
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margin_x = (target_size[0] - source.width) // 2
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margin_y = target_size[1] - source.height
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background = Image.new('RGB', target_size, (255, 255, 255))
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background.paste(source, (margin_x, margin_y))
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mask = Image.new('L', target_size, 255)
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mask_draw = ImageDraw.Draw(mask)
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# Adjust mask generation based on alignment
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if alignment == "Middle":
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mask_draw.rectangle([
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(margin_x + overlap, margin_y + overlap),
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(margin_x + source.width - overlap, margin_y + source.height - overlap)
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], fill=0)
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elif alignment == "Left":
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mask_draw.rectangle([
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(margin_x, margin_y),
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(margin_x + source.width - overlap, margin_y + source.height)
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], fill=0)
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elif alignment == "Right":
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mask_draw.rectangle([
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(margin_x + overlap, margin_y),
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(margin_x + source.width, margin_y + source.height)
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], fill=0)
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elif alignment == "Top":
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mask_draw.rectangle([
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(margin_x, margin_y),
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(margin_x + source.width, margin_y + source.height - overlap)
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], fill=0)
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elif alignment == "Bottom":
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mask_draw.rectangle([
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(margin_x, margin_y + overlap),
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(margin_x + source.width, margin_y + source.height)
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], fill=0)
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cnet_image = background.copy()
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cnet_image.paste(0, (0, 0), mask)
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final_prompt = f"{prompt_input} , high quality, 4k"
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(
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prompt_embeds,
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yield background, cnet_image
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def clear_result():
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"""Clears the result ImageSlider."""
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return gr.update(value=None)
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def preload_presets(target_ratio):
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"""Updates the width and height sliders based on the selected aspect ratio."""
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if target_ratio == "9:16":
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changed_width = 720
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changed_height = 1280
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elif target_ratio == "Custom":
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return 720, 1280, gr.update(open=True)
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css = """
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.gradio-container {
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with gr.Column():
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input_image = gr.Image(
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type="pil",
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label="Input Image"
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)
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with gr.Row():
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with gr.Column(scale=2):
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prompt_input = gr.Textbox(label="Prompt (Optional)")
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with gr.Column(scale=1):
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run_button = gr.Button("Generate")
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with gr.Row():
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target_ratio = gr.Radio(
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label="Expected Ratio",
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choices=["9:16", "16:9", "Custom"],
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value="9:16",
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scale=2
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)
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alignment_dropdown = gr.Dropdown(
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choices=["Middle", "Left", "Right", "Top", "Bottom"],
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value="Middle",
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label="Alignment"
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)
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with gr.Accordion(label="Advanced settings", open=False) as settings_panel:
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with gr.Column():
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with gr.Row():
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width_slider = gr.Slider(
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label="Width",
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minimum=720,
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maximum=1536,
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step=8,
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value=720, # Set a default value
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)
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height_slider = gr.Slider(
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label="Height",
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minimum=720,
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maximum=1536,
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step=8,
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value=1280, # Set a default value
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)
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with gr.Row():
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num_inference_steps = gr.Slider(label="Steps", minimum=4, maximum=12, step=1, value=8)
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overlap_width = gr.Slider(
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label="Mask overlap width",
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minimum=1,
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maximum=50,
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value=42,
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step=1
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)
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gr.Examples(
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examples=[
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["./examples/example_1.webp", 1280, 720, "Middle"],
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["./examples/example_2.jpg", 1440, 810, "Left"],
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["./examples/example_3.jpg", 1024, 1024, "Top"],
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["./examples/example_3.jpg", 1024, 1024, "Bottom"],
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],
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inputs=[input_image, width_slider, height_slider, alignment_dropdown],
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)
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with gr.Column():
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interactive=False,
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label="Generated Image",
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)
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use_as_input_button = gr.Button("Use as Input Image", visible=False)
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def use_output_as_input(output_image):
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"""Sets the generated output as the new input image."""
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return gr.update(value=output_image[1])
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use_as_input_button.click(
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fn=use_output_as_input,
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inputs=[result],
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outputs=[input_image]
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)
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target_ratio.change(
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fn=preload_presets,
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inputs=[target_ratio],
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outputs=[width_slider, height_slider, settings_panel],
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queue=False
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)
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run_button.click(
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fn=clear_result,
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inputs=None,
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outputs=result,
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).then(
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fn=infer,
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inputs=[input_image, width_slider, height_slider, overlap_width, num_inference_steps,
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prompt_input, alignment_dropdown],
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outputs=result,
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).then(
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fn=lambda: gr.update(visible=True),
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inputs=None,
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outputs=use_as_input_button,
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)
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prompt_input.submit(
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outputs=result,
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).then(
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fn=infer,
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inputs=[input_image, width_slider, height_slider, overlap_width, num_inference_steps,
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prompt_input, alignment_dropdown],
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outputs=result,
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).then(
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fn=lambda: gr.update(visible=True),
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inputs=None,
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outputs=use_as_input_button,
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)
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demo.queue(max_size=12).launch(share=False)
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