I2I / flux1_img2img.py
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import torch
from diffusers import FluxImg2ImgPipeline
from PIL import Image
import sys
import spaces
# I only test with FLUX.1-schnell
@spaces.GPU
def process_image(image,mask_image,prompt="a person",model_id="black-forest-labs/FLUX.1-schnell",strength=0.75,seed=0,num_inference_steps=4):
print("start process image process_image")
if image == None:
print("empty input image returned")
return None
pipe = FluxImg2ImgPipeline.from_pretrained(model_id, torch_dtype=torch.bfloat16)
pipe.to("cuda")
generators = []
generator = torch.Generator("cuda").manual_seed(seed)
generators.append(generator)
# more parameter see https://huggingface.co/docs/diffusers/api/pipelines/flux#diffusers.FluxInpaintPipeline
print(prompt)
output = pipe(prompt=prompt, image=image,generator=generator,strength=strength
,guidance_scale=0,num_inference_steps=num_inference_steps,max_sequence_length=256)
# TODO support mask
return output.images[0]
if __name__ == "__main__":
#args input-image input-mask output
image = Image.open(sys.argv[1])
mask = Image.open(sys.argv[2])
output = process_image(image,mask)
output.save(sys.argv[3])