iforgotagian / app.py
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Create app.py
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import torch
from diffusers import DiffusionPipeline
import gradio as gr
# Load the CogVideoX diffusion model
pipe = DiffusionPipeline.from_pretrained("THUDM/CogVideoX-5b", torch_dtype=torch.float16)
pipe.to("cuda") # Send the model to GPU if available
# Function to generate an image based on user prompt
def generate_image(prompt):
# Generate an image using the CogVideoX model
with torch.inference_mode():
image = pipe(prompt).images[0]
return image
# Set up the Gradio interface
with gr.Blocks() as demo:
gr.Markdown("# Image Generation using CogVideoX (THUDM/CogVideoX-5b)")
# Input for user to provide a text prompt
prompt_input = gr.Textbox(label="Enter Text Prompt", placeholder="e.g. 'Astronaut in a jungle, cold color palette, muted colors, detailed, 8k'", value="Astronaut in a jungle, cold color palette, muted colors, detailed, 8k")
# Output to display the generated image
output_image = gr.Image(label="Generated Image")
# Button to trigger image generation
generate_button = gr.Button("Generate Image")
# Link button click to image generation function
generate_button.click(fn=generate_image, inputs=prompt_input, outputs=output_image)
# Launch the Gradio app
demo.launch()