import gradio as gr import torch import numpy as np import modin.pandas as pd from PIL import Image from diffusers import DiffusionPipeline, StableDiffusionLatentUpscalePipeline device = "cuda" if torch.cuda.is_available() else "cpu" pipe = DiffusionPipeline.from_pretrained("circulus/canvers-realistic-v3.6", torch_dtype=torch.float16, safety_checker=None) pipe = pipe.to(device) pipe.enable_xformers_memory_efficient_attention() refiner = DiffusionPipeline.from_pretrained("stabilityai/stable-diffusion-xl-refiner-1.0", use_safetensors=True, torch_dtype=torch.float16, variant="fp16") refiner.enable_xformers_memory_efficient_attention() refiner = refiner.to(device) def genie (Prompt, negative_prompt, height, width, scale, steps, seed, upscale): generator = np.random.seed(0) if seed == 0 else torch.manual_seed(seed) if upscale == "Yes": #n_steps = 30 #high_noise_frac = 0.95 int_image = pipe(Prompt, negative_prompt=negative_prompt, height=height, width=width, num_inference_steps=steps, guidance_scale=scale).images[0] image = refiner(Prompt, negative_prompt=negative_prompt, image=int_image).images[0] return (int_image, image) else: image = pipe(Prompt, negative_prompt=negative_prompt, height=height, width=width, num_inference_steps=steps, guidance_scale=scale).images[0] return (image, image) gr.Interface(fn=genie, inputs=[gr.Textbox(label='What you want the AI to generate. 77 Token Limit.'), gr.Textbox(label='What you Do Not want the AI to generate. 77 Token Limit'), gr.Slider(512, 1024, 768, step=128, label='Height'), gr.Slider(512, 1024, 768, step=128, label='Width'), gr.Slider(1, maximum=15, value=7, step=.25, label='Guidance Scale'), gr.Slider(25, maximum=100, value=50, step=25, label='Number of Iterations'), gr.Slider(minimum=0, step=1, maximum=9999999999999999, randomize=True, label='Seed: 0 is Random'), gr.Radio(["Yes", "No"], label='SDXL 1.0 Refiner', value='No'), ], outputs=[gr.Image(label='Generated Image'), gr.Image(label='Generated Image')], title="PhotoReal V3.6 with SD x2 Upscaler - GPU", description="

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