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This is a ControlNet based model that synthesizes satellite images given Canny edge images. The base stable diffusion model used is stable-diffusion-2-1-base (v2-1_512-ema-pruned.ckpt).

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Examples

from diffusers import StableDiffusionControlNetPipeline, ControlNetModel, UniPCMultistepScheduler
import torch
from PIL import Image

img = Image.open("canny_example.jpeg")

controlnet = ControlNetModel.from_pretrained("MVRL/GeoSynth-Canny")

scheduler = UniPCMultistepScheduler.from_pretrained("stabilityai/stable-diffusion-2-1-base", subfolder="scheduler")

pipe = StableDiffusionControlNetPipeline.from_pretrained("stabilityai/stable-diffusion-2-1-base", controlnet=controlnet, scheduler=scheduler)
pipe.enable_xformers_memory_efficient_attention()
pipe.enable_model_cpu_offload()

# generate image
generator = torch.manual_seed(10345340)
image = pipe(
    "Satellite image features a city neighborhood",
    generator=generator,
    image=img,
).images[0]

image.save("generated_city.jpg")

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