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Update app.py
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app.py
CHANGED
@@ -1,3 +1,7 @@
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import logging
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import os
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import boto3
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@@ -17,6 +21,9 @@ from functools import partial
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import io
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from io import BytesIO
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subprocess.run(shlex.split('pip install wheel/torchmcubes-0.1.0-cp310-cp310-linux_x86_64.whl'))
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@@ -165,7 +172,7 @@ def preprocess(input_image, do_remove_background, foreground_ratio):
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image = fill_background(image)
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return image
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@spaces.GPU
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def generate(image, mc_resolution, formats=["obj", "glb"]):
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scene_codes = model(image, device=device)
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mesh = model.extract_mesh(scene_codes, resolution=mc_resolution)[0]
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@@ -180,73 +187,32 @@ def generate(image, mc_resolution, formats=["obj", "glb"]):
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return mesh_path_obj.name, mesh_path_glb.name
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preprocessed = preprocess(image_pil, do_remove_background, foreground_ratio)
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mesh_name_obj, mesh_name_glb = generate(preprocessed,
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return preprocessed, mesh_name_obj, mesh_name_glb
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label="Generated Image",
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image_mode="RGBA",
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sources="upload",
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type="pil",
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elem_id="content_image"
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)
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text_prompt = gr.Textbox(
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label="Text Prompt",
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placeholder="Enter Positive Prompt"
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)
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seed = gr.Textbox(label="Random Seed", value=0)
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processed_image = gr.Image(label="Processed Image", interactive=False, visible=False)
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with gr.Row():
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with gr.Group():
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do_remove_background = gr.Checkbox(
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label="Remove Background", value=True
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)
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foreground_ratio = gr.Slider(
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label="Foreground Ratio",
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minimum=0.5,
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maximum=1.0,
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value=0.85,
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step=0.05,
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)
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mc_resolution = gr.Slider(
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label="Marching Cubes Resolution",
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minimum=32,
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maximum=320,
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value=256,
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step=32
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)
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with gr.Row():
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submit = gr.Button("Generate", elem_id="generate", variant="primary")
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with gr.Column():
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with gr.Tab("OBJ"):
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output_model_obj = gr.Model3D(
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label="Output Model (OBJ Format)",
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interactive=False,
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)
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gr.Markdown("Note: Downloaded object will be flipped in case of .obj export. Export .glb instead or manually flip it before usage.")
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with gr.Tab("GLB"):
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output_model_glb = gr.Model3D(
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label="Output Model (GLB Format)",
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interactive=False,
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)
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gr.Markdown("Note: The model shown here has a darker appearance. Download to get correct results.")
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submit.click(fn=check_input_image, inputs=[input_image]).success(
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fn=run_example,
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inputs=[input_image, seed, do_remove_background, foreground_ratio, mc_resolution, text_prompt],
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outputs=[processed_image, output_model_obj, output_model_glb],
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# outputs=[output_model_obj, output_model_glb],
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)
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demo.queue(max_size=10)
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demo.launch()
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from fastapi import FastAPI, File, UploadFile, Form
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from fastapi.responses import StreamingResponse
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from pydantic import BaseModel
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from typing import Optional
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import logging
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import os
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import boto3
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import io
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from io import BytesIO
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app = FastAPI()
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torch.cuda.empty_cache()
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subprocess.run(shlex.split('pip install wheel/torchmcubes-0.1.0-cp310-cp310-linux_x86_64.whl'))
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image = fill_background(image)
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return image
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# @spaces.GPU
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def generate(image, mc_resolution, formats=["obj", "glb"]):
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scene_codes = model(image, device=device)
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mesh = model.extract_mesh(scene_codes, resolution=mc_resolution)[0]
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return mesh_path_obj.name, mesh_path_glb.name
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@app.post("/process_image/")
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async def process_image(
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file: UploadFile = File(...),
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seed: int = Form(...),
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use_image: bool = Form(...),
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do_remove_background: bool = Form(...),
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foreground_ratio: float = Form(...),
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mc_resolution: int = Form(...),
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text_prompt: Optional[str] = Form(None)
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):
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image_bytes = await file.read()
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input_image = Image.open(BytesIO(image_bytes))
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if use_image:
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image_pil = generate_image_from_text(encoded_image=input_image, seed=seed, pos_prompt=text_prompt)
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else:
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image_pil = input_image
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preprocessed = preprocess(image_pil, do_remove_background, foreground_ratio)
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mesh_name_obj, mesh_name_glb = generate(preprocessed, mc_resolution)
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return {
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"obj_path": mesh_name_obj,
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"glb_path": mesh_name_glb
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}
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if __name__ == "__main__":
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import uvicorn
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uvicorn.run(app, host="0.0.0.0", port=7860)
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