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"""A simple web interactive chat demo based on gradio.""" |
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import os |
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from argparse import ArgumentParser |
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import gradio as gr |
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import mdtex2html |
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from transformers import AutoModelForCausalLM, AutoTokenizer |
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from transformers.generation import GenerationConfig |
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DEFAULT_CKPT_PATH = 'Qwen/Qwen-7B-Chat' |
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def _get_args(): |
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parser = ArgumentParser() |
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parser.add_argument("-c", "--checkpoint-path", type=str, default=DEFAULT_CKPT_PATH, |
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help="Checkpoint name or path, default to %(default)r") |
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parser.add_argument("--cpu-only", action="store_true", help="Run demo with CPU only") |
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parser.add_argument("--share", action="store_true", default=False, |
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help="Create a publicly shareable link for the interface.") |
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parser.add_argument("--inbrowser", action="store_true", default=False, |
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help="Automatically launch the interface in a new tab on the default browser.") |
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parser.add_argument("--server-port", type=int, default=8000, |
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help="Demo server port.") |
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parser.add_argument("--server-name", type=str, default="127.0.0.1", |
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help="Demo server name.") |
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args = parser.parse_args() |
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return args |
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def _load_model_tokenizer(args): |
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tokenizer = AutoTokenizer.from_pretrained( |
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args.checkpoint_path, trust_remote_code=True, resume_download=True, |
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) |
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if args.cpu_only: |
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device_map = "cpu" |
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else: |
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device_map = "auto" |
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model = AutoModelForCausalLM.from_pretrained( |
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args.checkpoint_path, |
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device_map=device_map, |
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trust_remote_code=True, |
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resume_download=True, |
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).eval() |
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config = GenerationConfig.from_pretrained( |
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args.checkpoint_path, trust_remote_code=True, resume_download=True, |
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) |
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return model, tokenizer, config |
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def postprocess(self, y): |
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if y is None: |
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return [] |
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for i, (message, response) in enumerate(y): |
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y[i] = ( |
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None if message is None else mdtex2html.convert(message), |
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None if response is None else mdtex2html.convert(response), |
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) |
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return y |
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gr.Chatbot.postprocess = postprocess |
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def _parse_text(text): |
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lines = text.split("\n") |
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lines = [line for line in lines if line != ""] |
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count = 0 |
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for i, line in enumerate(lines): |
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if "```" in line: |
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count += 1 |
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items = line.split("`") |
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if count % 2 == 1: |
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lines[i] = f'<pre><code class="language-{items[-1]}">' |
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else: |
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lines[i] = f"<br></code></pre>" |
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else: |
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if i > 0: |
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if count % 2 == 1: |
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line = line.replace("`", r"\`") |
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line = line.replace("<", "<") |
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line = line.replace(">", ">") |
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line = line.replace(" ", " ") |
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line = line.replace("*", "*") |
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line = line.replace("_", "_") |
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line = line.replace("-", "-") |
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line = line.replace(".", ".") |
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line = line.replace("!", "!") |
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line = line.replace("(", "(") |
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line = line.replace(")", ")") |
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line = line.replace("$", "$") |
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lines[i] = "<br>" + line |
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text = "".join(lines) |
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return text |
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def _gc(): |
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import gc |
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gc.collect() |
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def _launch_demo(args, model, tokenizer, config): |
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def predict(_query, _chatbot, _task_history): |
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print(f"User: {_parse_text(_query)}") |
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_chatbot.append((_parse_text(_query), "")) |
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full_response = "" |
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for response in model.chat_stream(tokenizer, _query, history=_task_history, generation_config=config): |
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_chatbot[-1] = (_parse_text(_query), _parse_text(response)) |
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yield _chatbot |
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full_response = _parse_text(response) |
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print(f"History: {_task_history}") |
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_task_history.append((_query, full_response)) |
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print(f"Qwen-Chat: {_parse_text(full_response)}") |
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def regenerate(_chatbot, _task_history): |
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if not _task_history: |
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yield _chatbot |
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return |
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item = _task_history.pop(-1) |
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_chatbot.pop(-1) |
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yield from predict(item[0], _chatbot, _task_history) |
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def reset_user_input(): |
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return gr.update(value="") |
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def reset_state(_chatbot, _task_history): |
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_task_history.clear() |
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_chatbot.clear() |
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_gc() |
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return _chatbot |
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with gr.Blocks() as demo: |
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gr.Markdown("""\ |
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<p align="center"><img src="https://qianwen-res.oss-cn-beijing.aliyuncs.com/logo_qwen.jpg" style="height: 80px"/><p>""") |
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gr.Markdown("""<center><font size=8>Qwen-Chat Bot</center>""") |
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gr.Markdown( |
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"""\ |
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<center><font size=3>This WebUI is based on Qwen-Chat, developed by Alibaba Cloud. \ |
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(本WebUI基于Qwen-Chat打造,实现聊天机器人功能。)</center>""") |
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gr.Markdown("""\ |
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<center><font size=4> |
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Qwen-7B <a href="https://modelscope.cn/models/qwen/Qwen-7B/summary">🤖 </a> | |
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<a href="https://huggingface.co/Qwen/Qwen-7B">🤗</a>  | |
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Qwen-7B-Chat <a href="https://modelscope.cn/models/qwen/Qwen-7B-Chat/summary">🤖 </a> | |
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<a href="https://huggingface.co/Qwen/Qwen-7B-Chat">🤗</a>  | |
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Qwen-14B <a href="https://modelscope.cn/models/qwen/Qwen-14B/summary">🤖 </a> | |
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<a href="https://huggingface.co/Qwen/Qwen-14B">🤗</a>  | |
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Qwen-14B-Chat <a href="https://modelscope.cn/models/qwen/Qwen-14B-Chat/summary">🤖 </a> | |
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<a href="https://huggingface.co/Qwen/Qwen-14B-Chat">🤗</a>  | |
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 <a href="https://github.com/QwenLM/Qwen">Github</a></center>""") |
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chatbot = gr.Chatbot(label='Qwen-Chat', elem_classes="control-height") |
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query = gr.Textbox(lines=2, label='Input') |
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task_history = gr.State([]) |
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with gr.Row(): |
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empty_btn = gr.Button("🧹 Clear History (清除历史)") |
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submit_btn = gr.Button("🚀 Submit (发送)") |
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regen_btn = gr.Button("🤔️ Regenerate (重试)") |
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submit_btn.click(predict, [query, chatbot, task_history], [chatbot], show_progress=True) |
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submit_btn.click(reset_user_input, [], [query]) |
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empty_btn.click(reset_state, [chatbot, task_history], outputs=[chatbot], show_progress=True) |
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regen_btn.click(regenerate, [chatbot, task_history], [chatbot], show_progress=True) |
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gr.Markdown("""\ |
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<font size=2>Note: This demo is governed by the original license of Qwen. \ |
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We strongly advise users not to knowingly generate or allow others to knowingly generate harmful content, \ |
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including hate speech, violence, pornography, deception, etc. \ |
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(注:本演示受Qwen的许可协议限制。我们强烈建议,用户不应传播及不应允许他人传播以下内容,\ |
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包括但不限于仇恨言论、暴力、色情、欺诈相关的有害信息。)""") |
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demo.queue().launch( |
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share=args.share, |
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inbrowser=args.inbrowser, |
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server_port=args.server_port, |
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server_name=args.server_name, |
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) |
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def main(): |
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args = _get_args() |
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model, tokenizer, config = _load_model_tokenizer(args) |
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_launch_demo(args, model, tokenizer, config) |
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if __name__ == '__main__': |
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main() |
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