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app.py
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import gradio as gr
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import copy
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import random
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import os
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import requests
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import time
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import sys
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from huggingface_hub import snapshot_download
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from llama_cpp import Llama
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SYSTEM_PROMPT = "Ты — Сайга, русскоязычный автоматический ассистент. Ты разговариваешь с людьми и помогаешь им."
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SYSTEM_TOKEN = 1788
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USER_TOKEN = 1404
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BOT_TOKEN = 9225
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LINEBREAK_TOKEN = 13
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def get_message_tokens(model, role, content):
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message_tokens = model.tokenize(content.encode("utf-8"))
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message_tokens.insert(1, ROLE_TOKENS[role])
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message_tokens.insert(2, LINEBREAK_TOKEN)
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message_tokens.append(model.token_eos())
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return message_tokens
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def get_system_tokens(model):
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system_message = {"role": "system", "content": SYSTEM_PROMPT}
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return get_message_tokens(model, **system_message)
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repo_name = "IlyaGusev/saiga2_13b_ggml"
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model_name = "ggml-model-q4_1.bin"
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snapshot_download(repo_id=repo_name, local_dir=".", allow_patterns=model_name)
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model = Llama(
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model_path=model_name,
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n_ctx=2000,
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n_parts=1,
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)
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max_new_tokens = 1500
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def user(message, history):
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new_history = history + [[message, None]]
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return "", new_history
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def bot(
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history,
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system_prompt,
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top_p,
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top_k,
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temp
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)
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tokens = get_system_tokens(model)[:]
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tokens.append(LINEBREAK_TOKEN)
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for user_message, bot_message in history[:-1]:
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message_tokens = get_message_tokens(model=model, role="user", content=user_message)
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tokens.extend(message_tokens)
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if bot_message:
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message_tokens = get_message_tokens(model=model, role="bot", content=bot_message)
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tokens.extend(message_tokens)
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68 |
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last_user_message = history[-1][0]
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if retrieved_docs:
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last_user_message = f"Контекст: {retrieved_docs}\n\nИспользуя контекст, ответь на вопрос: {last_user_message}"
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message_tokens = get_message_tokens(model=model, role="user", content=last_user_message)
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tokens.extend(message_tokens)
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role_tokens = [model.token_bos(), BOT_TOKEN, LINEBREAK_TOKEN]
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tokens.extend(role_tokens)
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generator = model.generate(
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tokens,
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top_k=top_k,
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top_p=top_p,
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temp=temp
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)
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partial_text = ""
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for i, token in enumerate(generator):
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if token == model.token_eos() or (max_new_tokens is not None and i >= max_new_tokens):
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break
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partial_text += model.detokenize([token]).decode("utf-8", "ignore")
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history[-1][1] = partial_text
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yield history
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with gr.Blocks(
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theme=gr.themes.Soft()
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) as demo:
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conversation_id = gr.State(get_uuid)
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favicon = '<img src="https://cdn.midjourney.com/b88e5beb-6324-4820-8504-a1a37a9ba36d/0_1.png" width="48px" style="display: inline">'
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gr.Markdown(
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f"""<h1><center>{favicon}Saiga2 13B</center></h1>
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This is a demo of a **Russian**-speaking LLaMA2-based model. If you are interested in other languages, please check other models, such as [MPT-7B-Chat](https://huggingface.co/spaces/mosaicml/mpt-7b-chat).
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Это демонстрационная версия версии [Сайги-2 с 13 миллиардами параметров](https://huggingface.co/IlyaGusev/saiga_13b_lora).
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Сайга — это разговорная языковая модель, которая основана на [LLaMA](https://research.facebook.com/publications/llama-open-and-efficient-foundation-language-models/) и дообучена на корпусах, сгенерированных ChatGPT, таких как [ru_turbo_alpaca](https://huggingface.co/datasets/IlyaGusev/ru_turbo_alpaca), [ru_turbo_saiga](https://huggingface.co/datasets/IlyaGusev/ru_turbo_saiga) и [gpt_roleplay_realm](https://huggingface.co/datasets/IlyaGusev/gpt_roleplay_realm).
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"""
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)
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with gr.Row():
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with gr.Column(scale=5):
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system_prompt = gr.Textbox(label="Системный промпт", placeholder="", value=SYSTEM_PROMPT, interactive=False)
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chatbot = gr.Chatbot(label="Диалог").style(height=400)
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with gr.Column(min_width=80, scale=1):
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with gr.Tab(label="Параметры генерации"):
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top_p = gr.Slider(
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minimum=0.0,
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maximum=1.0,
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value=0.9,
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step=0.05,
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interactive=True,
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label="Top-p",
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)
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top_k = gr.Slider(
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minimum=10,
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maximum=100,
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value=30,
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step=5,
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interactive=True,
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label="Top-k",
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)
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temp = gr.Slider(
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minimum=0.0,
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maximum=2.0,
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value=0.1,
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step=0.1,
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interactive=True,
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label="Temp"
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)
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with gr.Row():
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with gr.Column():
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msg = gr.Textbox(
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label="Отправить сообщение",
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placeholder="Отправить сообщение",
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show_label=False,
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).style(container=False)
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with gr.Column():
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with gr.Row():
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submit = gr.Button("Отправить")
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stop = gr.Button("Остановить")
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clear = gr.Button("Очистить")
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with gr.Row():
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gr.Markdown(
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"""ПРЕДУПРЕЖДЕНИЕ: Модель может генерировать фактически или этически некорректные тексты. Мы не несём за это ответственность."""
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)
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# Pressing Enter
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submit_event = msg.submit(
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fn=user,
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inputs=[msg, chatbot, system_prompt],
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outputs=[msg, chatbot],
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queue=False,
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).success(
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fn=retrieve,
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inputs=[chatbot, db, retrieved_docs, k_documents],
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outputs=[retrieved_docs],
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queue=True,
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).success(
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fn=bot,
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inputs=[
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chatbot,
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system_prompt,
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conversation_id,
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retrieved_docs,
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top_p,
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top_k,
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temp
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],
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outputs=chatbot,
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queue=True,
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)
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# Pressing the button
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submit_click_event = submit.click(
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fn=user,
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inputs=[msg, chatbot, system_prompt],
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outputs=[msg, chatbot],
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queue=False,
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).success(
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fn=retrieve,
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inputs=[chatbot, db, retrieved_docs, k_documents],
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outputs=[retrieved_docs],
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queue=True,
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).success(
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fn=bot,
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inputs=[
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chatbot,
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system_prompt,
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conversation_id,
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retrieved_docs,
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199 |
+
top_p,
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top_k,
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temp
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],
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outputs=chatbot,
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queue=True,
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)
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+
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# Stop generation
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stop.click(
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fn=None,
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inputs=None,
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outputs=None,
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cancels=[submit_event, submit_click_event],
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queue=False,
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)
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+
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# Clear history
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clear.click(lambda: None, None, chatbot, queue=False)
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+
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demo.queue(max_size=128, concurrency_count=1)
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demo.launch()
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