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import gradio as gr
from diffusers import DiffusionPipeline
import torch
from PIL import Image
import spaces
# Load the pre-trained pipeline
pipeline = DiffusionPipeline.from_pretrained("stabilityai/stable-video-diffusion-img2vid-xt-1-1")
# Define the Gradio interface
interface = gr.Interface(
fn=lambda img: generate_video(img),
inputs=gr.Image(type="pil"),
outputs=gr.Video(),
title="Stable Video Diffusion",
description="Upload an image to generate a video",
theme="soft"
)
# Define the function to generate the video
def generate_video(img):
# Convert the input image to a tensor
img_tensor = torch.tensor(img).unsqueeze(0) / 255.0
# Run the pipeline to generate the video
output = pipeline(img_tensor)
# Extract the video frames from the output
video_frames = output["video_frames"]
# Convert the video frames to a video
video = []
for frame in video_frames:
video.append(Image.fromarray(frame.detach().cpu().numpy()))
# Return the generated video
return video
# Launch the Gradio app
interface.launch()