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3997444
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Parent(s):
547ab30
Create app.py
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app.py
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import os
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import gradio as gr
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import mdtex2html
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import torch
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from transformers import AutoModelForCausalLM, AutoTokenizer
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from transformers.generation import GenerationConfig
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# Initialize model and tokenizer
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tokenizer = AutoTokenizer.from_pretrained("Qwen/Qwen-7B-Chat", trust_remote_code=True)
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model = AutoModelForCausalLM.from_pretrained("Qwen/Qwen-7B-Chat", device_map="auto", trust_remote_code=True).eval()
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model.generation_config = GenerationConfig.from_pretrained("Qwen/Qwen-7B-Chat", trust_remote_code=True)
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# Postprocess function
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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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# Text parsing function
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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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# Demo launching function
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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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import gc
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gc.collect()
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torch.cuda.empty_cache()
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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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## Qwen-14B-Chat: A Large Language Model by Alibaba Cloud
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**Space created by [@artificialguybr](https://twitter.com/artificialguybr) based on QWEN Code. Thanks HF for GPU!**
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### Performance Metrics:
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- **MMLU Accuracy**:
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- 0-shot: 64.6
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- 5-shot: 66.5
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- **HumanEval Pass@1**: 43.9
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- **GSM8K Accuracy**:
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- 0-shot: 60.1
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- 8-shot: 59.3
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""")
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chatbot = gr.Chatbot(label='Qwen-Chat', elem_classes="control-height", queue=True)
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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")
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submit_btn = gr.Button("🚀 Submit")
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regen_btn = gr.Button("🤔️ Regenerate")
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submit_btn.click(predict, [query, chatbot, task_history], [chatbot], show_progress=True, queue=True) # Enable queue
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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, queue=True) # Enable queue
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demo.queue(max_size=20)
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demo.launch(share=True)
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# Main execution
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if __name__ == "__main__":
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_launch_demo(None, model, tokenizer, model.generation_config)
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