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import gradio as gr | |
import numpy as np | |
import random | |
from diffusers import DiffusionPipeline | |
from optimum.intel.openvino.modeling_diffusion import OVModelVaeDecoder, OVBaseModel, OVStableDiffusionPipeline | |
import torch | |
from huggingface_hub import snapshot_download | |
import openvino.runtime as ov | |
from typing import Optional, Dict | |
model_id = "Disty0/SoteMixV3" | |
#model_id = "Disty0/sotediffusion-v2" #不可 | |
#1024*512 記憶體不足 1024x1536 | |
HIGH=512 | |
WIDTH=512 | |
batch_size = -1 | |
#class CustomOVModelVaeDecoder(OVModelVaeDecoder): | |
# def __init__( | |
# self, model: ov.Model, parent_model: OVBaseModel, ov_config: Optional[Dict[str, str]] = None, model_dir: str = None, | |
# ): | |
# super(OVModelVaeDecoder, self).__init__(model, parent_model, ov_config, "vae_decoder", model_dir) | |
pipe = OVStableDiffusionPipeline.from_pretrained(model_id) | |
#pipe = OVStableDiffusionPipeline.from_pretrained(model_id, compile = False, ov_config = {"CACHE_DIR":""}) | |
#有taesd很醜 | |
#taesd_dir = snapshot_download(repo_id="deinferno/taesd-openvino") | |
#pipe.vae_decoder = CustomOVModelVaeDecoder(model = OVBaseModel.load_model(f"{taesd_dir}/vae_decoder/openvino_model.xml"), parent_model = pipe, model_dir = taesd_dir) | |
#pipe.reshape( batch_size=-1, height=HIGH, width=WIDTH, num_images_per_prompt=1) | |
#pipe.load_textual_inversion("./badhandv4.pt", "badhandv4") | |
#pipe.load_textual_inversion("./Konpeto.pt", "Konpeto") | |
#<shigure-ui-style> | |
#pipe.load_textual_inversion("sd-concepts-library/shigure-ui-style") | |
#pipe.load_textual_inversion("sd-concepts-library/ruan-jia") | |
#pipe.load_textual_inversion("sd-concepts-library/agm-style-nao") | |
#pipe.compile() | |
prompt="" | |
negative_prompt="(worst quality, low quality, lowres), zombie, interlocked fingers," | |
def infer(prompt,negative_prompt): | |
image = pipe( | |
prompt = prompt, | |
negative_prompt = negative_prompt, | |
width = HIGH, | |
height = WIDTH, | |
guidance_scale=7.5, | |
num_inference_steps=30, | |
num_images_per_prompt=1, | |
).images[0] | |
return image | |
examples = [ | |
"Sailor Chibi Moon, Katsura Masakazu style", | |
"1girl, silver hair, symbol-shaped pupils, yellow eyes, smiling, light particles, light rays, wallpaper, star guardian, serious face, red inner hair, power aura, grandmaster1, golden and white clothes", | |
"A cute kitten, Tinkle style.", | |
"(illustration, 8k CG, extremely detailed),(whimsical),catgirl,teenage girl,playing in the snow,winter wonderland,snow-covered trees,soft pastel colors,gentle lighting,sparkling snow,joyful,magical atmosphere,highly detailed,fluffy cat ears and tail,intricate winter clothing,shallow depth of field,watercolor techniques,close-up shot,slightly tilted angle,fairy tale architecture,nostalgic,playful,winter magic,(masterpiece:2),best quality,ultra highres,original,extremely detailed,perfect lighting,", | |
] | |
css=""" | |
#col-container { | |
margin: 0 auto; | |
max-width: 520px; | |
} | |
""" | |
power_device = "CPU" | |
with gr.Blocks(css=css) as demo: | |
with gr.Column(elem_id="col-container"): | |
gr.Markdown(f""" | |
# Disty0/SoteMixV3 {HIGH}x{WIDTH} | |
Currently running on {power_device}. | |
""") | |
with gr.Row(): | |
prompt = gr.Text( | |
label="Prompt", | |
show_label=False, | |
max_lines=1, | |
placeholder="Enter your prompt", | |
container=False, | |
) | |
run_button = gr.Button("Run", scale=0) | |
result = gr.Image(label="Result", show_label=False) | |
gr.Examples( | |
examples = examples, | |
fn = infer, | |
inputs = [prompt], | |
outputs = [result] | |
) | |
run_button.click( | |
fn = infer, | |
inputs = [prompt], | |
outputs = [result] | |
) | |
demo.queue().launch() |