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#!/usr/bin/env python | |
import pathlib | |
import shlex | |
import subprocess | |
import gradio as gr | |
from model import Model | |
from settings import CACHE_EXAMPLES, MAX_SEED | |
from utils import randomize_seed_fn | |
def create_demo(model: Model) -> gr.Blocks: | |
if not pathlib.Path('corgi.png').exists(): | |
subprocess.run( | |
shlex.split( | |
'wget https://raw.githubusercontent.com/openai/shap-e/d99cedaea18e0989e340163dbaeb4b109fa9e8ec/shap_e/examples/example_data/corgi.png -O corgi.png' | |
)) | |
examples = ['corgi.png'] | |
def process_example_fn(image_path: str) -> str: | |
return model.run_image(image_path) | |
with gr.Blocks() as demo: | |
with gr.Box(): | |
image = gr.Image(label='Input image', show_label=False, type='pil') | |
run_button = gr.Button('Run') | |
result = gr.Model3D(label='Result', show_label=False) | |
with gr.Accordion('Advanced options', open=False): | |
seed = gr.Slider(label='Seed', | |
minimum=0, | |
maximum=MAX_SEED, | |
step=1, | |
value=0) | |
randomize_seed = gr.Checkbox(label='Randomize seed', | |
value=True) | |
guidance_scale = gr.Slider(label='Guidance scale', | |
minimum=1, | |
maximum=20, | |
step=0.1, | |
value=3.0) | |
num_inference_steps = gr.Slider( | |
label='Number of inference steps', | |
minimum=1, | |
maximum=100, | |
step=1, | |
value=64) | |
gr.Examples(examples=examples, | |
inputs=image, | |
outputs=result, | |
fn=process_example_fn, | |
cache_examples=CACHE_EXAMPLES) | |
inputs = [ | |
image, | |
seed, | |
guidance_scale, | |
num_inference_steps, | |
] | |
run_button.click( | |
fn=randomize_seed_fn, | |
inputs=[seed, randomize_seed], | |
outputs=seed, | |
queue=False, | |
).then( | |
fn=model.run_image, | |
inputs=inputs, | |
outputs=result, | |
api_name='image-to-3d', | |
) | |
return demo | |