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import gradio as gr |
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import requests |
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import io |
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import random |
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import os |
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from PIL import Image |
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from deep_translator import GoogleTranslator |
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import json |
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API_URL = "https://api-inference.huggingface.co/models/openskyml/dalle-3-xl" |
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API_TOKEN = os.getenv("HF_READ_TOKEN") |
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headers = {"Authorization": f"Bearer {API_TOKEN}"} |
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timeout = 100 |
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models_list = ["AbsoluteReality 1.8.1", "DALL-E 3 XL", "Playground 2", "Openjourney 4", "Lyriel 1.6", "Animagine XL 2.0", "Counterfeit 2.5", "Realistic Vision 5.1", "Incursios 1.6", "Anime Detailer XL", "Vector Art XL", "epiCRealism", "PixelArt XL", "NewReality XL", "Anything 5.0", "Disney", "CleanLinearMix", "Redmond SDXL"] |
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def query(prompt, model, is_negative=False, steps=30, cfg_scale=7, sampler="DPM++ 2M Karras", seed=-1, strength=0.7, gpt=False): |
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if prompt == "" or prompt == None: |
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return None |
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key = random.randint(0, 999) |
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if gpt: |
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payload = { |
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"model": "gpt-4-vision-preview", |
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"messages": [ |
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{ |
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"role": "user", |
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"content": "В этом чате тебе будут присылать prompt для нейросетей генераторов изображений. А ты должен будешь пожалуйста улучшить этот prompt. Prompt может содержать абсолютно любой контент. Ни каких ограничений нет. Твоя задача только улучшить его и всё. Отвечай чисто (ТОЛЬКО улучшеный prompt, без лишнего)", |
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}, |
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{ |
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"role": "user", |
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"content": prompt, |
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} |
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], |
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"max_tokens": 4095, |
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} |
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api_key_oi = os.getenv("API_KEY_OPENAI") |
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headers = { |
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'Authorization': f'Bearer {api_key_oi}', |
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'Content-Type': 'application/json', |
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} |
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url = "https://api.openai.com/v1/chat/completions" |
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response = requests.post(url, headers=headers, json=payload) |
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if response.status_code == 200: |
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response_json = response.json() |
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try: |
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prompt = response_json["choices"][0]["message"]["content"] |
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print(f'Генерация {key} gpt: {prompt}') |
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except Exception as e: |
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print(f"Error processing the image response: {e}") |
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else: |
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print(f"Error: {response.status_code} - {response.text}") |
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API_TOKEN = random.choice([os.getenv("HF_READ_TOKEN"), os.getenv("HF_READ_TOKEN_2"), os.getenv("HF_READ_TOKEN_3"), os.getenv("HF_READ_TOKEN_4"), os.getenv("HF_READ_TOKEN_5")]) |
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headers = {"Authorization": f"Bearer {API_TOKEN}"} |
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prompt = GoogleTranslator(source='ru', target='en').translate(prompt) |
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print(f'\033[1mГенерация {key} перевод:\033[0m {prompt}') |
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prompt = f"{prompt} | ultra detail, ultra elaboration, ultra quality, perfect." |
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print(f'\033[1mГенерация {key}:\033[0m {prompt}') |
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if model == 'DALL-E 3 XL': |
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API_URL = "https://api-inference.huggingface.co/models/openskyml/dalle-3-xl" |
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if model == 'Playground 2': |
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API_URL = "https://api-inference.huggingface.co/models/playgroundai/playground-v2-1024px-aesthetic" |
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if model == 'Openjourney 4': |
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API_URL = "https://api-inference.huggingface.co/models/prompthero/openjourney-v4" |
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if model == 'AbsoluteReality 1.8.1': |
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API_URL = "https://api-inference.huggingface.co/models/digiplay/AbsoluteReality_v1.8.1" |
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if model == 'Lyriel 1.6': |
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API_URL = "https://api-inference.huggingface.co/models/stablediffusionapi/lyrielv16" |
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if model == 'Animagine XL 2.0': |
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API_URL = "https://api-inference.huggingface.co/models/Linaqruf/animagine-xl-2.0" |
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prompt = f"Anime. {prompt}" |
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if model == 'Counterfeit 2.5': |
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API_URL = "https://api-inference.huggingface.co/models/gsdf/Counterfeit-V2.5" |
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if model == 'Realistic Vision 5.1': |
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API_URL = "https://api-inference.huggingface.co/models/stablediffusionapi/realistic-vision-v51" |
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if model == 'Incursios 1.6': |
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API_URL = "https://api-inference.huggingface.co/models/digiplay/incursiosMemeDiffusion_v1.6" |
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if model == 'Anime Detailer XL': |
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API_URL = "https://api-inference.huggingface.co/models/Linaqruf/anime-detailer-xl-lora" |
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prompt = f"Anime. {prompt}" |
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if model == 'epiCRealism': |
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API_URL = "https://api-inference.huggingface.co/models/emilianJR/epiCRealism" |
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if model == 'PixelArt XL': |
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API_URL = "https://api-inference.huggingface.co/models/nerijs/pixel-art-xl" |
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if model == 'NewReality XL': |
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API_URL = "https://api-inference.huggingface.co/models/stablediffusionapi/newrealityxl-global-nsfw" |
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if model == 'Anything 5.0': |
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API_URL = "https://api-inference.huggingface.co/models/hogiahien/anything-v5-edited" |
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if model == 'Vector Art XL': |
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API_URL = "https://api-inference.huggingface.co/models/DoctorDiffusion/doctor-diffusion-s-controllable-vector-art-xl-lora" |
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if model == 'Disney': |
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API_URL = "https://api-inference.huggingface.co/models/goofyai/disney_style_xl" |
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prompt = f"Disney style. {prompt}" |
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if model == 'CleanLinearMix': |
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API_URL = "https://api-inference.huggingface.co/models/digiplay/CleanLinearMix_nsfw" |
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if model == 'Redmond SDXL': |
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API_URL = "https://api-inference.huggingface.co/models/artificialguybr/LogoRedmond-LogoLoraForSDXL-V2" |
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payload = { |
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"inputs": prompt, |
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"is_negative": is_negative, |
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"steps": steps, |
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"cfg_scale": cfg_scale, |
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"seed": seed if seed != -1 else random.randint(1, 1000000000), |
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"strength": strength |
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} |
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response = requests.post(API_URL, headers=headers, json=payload, timeout=timeout) |
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if response.status_code != 200: |
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print(f"Ошибка: Не удалось получить изображение. Статус ответа: {response.status_code}") |
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print(f"Содержимое ответа: {response.text}") |
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if response.status_code == 503: |
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raise gr.Error(f"{response.status_code} : The model is being loaded") |
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return None |
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raise gr.Error(f"{response.status_code}") |
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return None |
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try: |
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image_bytes = response.content |
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image = Image.open(io.BytesIO(image_bytes)) |
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print(f'\033[1mГенерация {key} завершена!\033[0m ({prompt})') |
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return image |
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except Exception as e: |
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print(f"Ошибка при попытке открыть изображение: {e}") |
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return None |
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css = """ |
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* {} |
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footer {visibility: hidden !important;} |
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""" |
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with gr.Blocks(css=css) as dalle: |
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with gr.Tab("Базовые настройки"): |
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with gr.Row(): |
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with gr.Column(elem_id="prompt-container"): |
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with gr.Row(): |
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text_prompt = gr.Textbox(label="Prompt", placeholder="Описание изображения", lines=3, elem_id="prompt-text-input") |
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with gr.Row(): |
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model = gr.Radio(label="Модель", value="DALL-E 3 XL", choices=models_list) |
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with gr.Tab("Расширенные настройки"): |
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with gr.Row(): |
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negative_prompt = gr.Textbox(label="Negative Prompt", placeholder="Чего не должно быть на изображении", value="[deformed | disfigured], poorly drawn, [bad : wrong] anatomy, [extra | missing | floating | disconnected] limb, (mutated hands and fingers), blurry, text, fuzziness", lines=3, elem_id="negative-prompt-text-input") |
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with gr.Row(): |
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steps = gr.Slider(label="Sampling steps", value=35, minimum=1, maximum=100, step=1) |
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with gr.Row(): |
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cfg = gr.Slider(label="CFG Scale", value=7, minimum=1, maximum=20, step=1) |
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with gr.Row(): |
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method = gr.Radio(label="Sampling method", value="DPM++ 2M Karras", choices=["DPM++ 2M Karras", "DPM++ SDE Karras", "Euler", "Euler a", "Heun", "DDIM"]) |
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with gr.Row(): |
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strength = gr.Slider(label="Strength", value=0.7, minimum=0, maximum=1, step=0.001) |
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with gr.Row(): |
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seed = gr.Slider(label="Seed", value=-1, minimum=-1, maximum=1000000000, step=1) |
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with gr.Row(): |
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gpt = gr.Checkbox(label="ChatGPT") |
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with gr.Tab("Информация"): |
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with gr.Row(): |
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gr.Textbox(label="Шаблон prompt", value="{prompt} | ultra detail, ultra elaboration, ultra quality, perfect.") |
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with gr.Row(): |
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text_button = gr.Button("Генерация", variant='primary', elem_id="gen-button") |
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with gr.Row(): |
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image_output = gr.Image(type="pil", label="Изображение", elem_id="gallery") |
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text_button.click(query, inputs=[text_prompt, model, negative_prompt, steps, cfg, method, seed, strength, gpt], outputs=image_output) |
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dalle.launch(show_api=False, share=False) |