Update app.py
Browse files
app.py
CHANGED
@@ -9,6 +9,7 @@ from tokenization_yi import YiTokenizer
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os.environ['PYTORCH_CUDA_ALLOC_CONF'] = 'max_split_size_mb:120'
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model_id = "larryvrh/Yi-6B-200K-Llamafied"
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tokenizer_path = "./"
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DESCRIPTION = """
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# 👋🏻Welcome to 🙋🏻♂️Tonic's🧑🏻🚀YI-200K🚀"
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@@ -19,13 +20,18 @@ Join us : 🌟TeamTonic🌟 is always making cool demos! Join our active builder
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tokenizer = AutoModelForCausalLM.from_pretrained(tokenizer_path)
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tokenizer = YiTokenizer.from_pretrained(tokenizer_path)
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model = AutoModelForCausalLM.from_pretrained(model_id=
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def
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input_ids = input_ids.to(model.device)
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response_ids = model.generate(
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input_ids,
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max_length=max_new_tokens + input_ids.shape[1],
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@@ -35,28 +41,33 @@ def predict(message, max_new_tokens=4056, temperature=3.5, top_p=0.9, top_k=800,
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pad_token_id=tokenizer.eos_token_id,
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do_sample=do_sample
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)
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response = tokenizer.decode(response_ids[:, input_ids.shape[-1]:][0], skip_special_tokens=True)
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return [("bot", response)]
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with gr.Blocks(theme='ParityError/Anime') as demo:
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gr.Markdown(DESCRIPTION)
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with gr.Group():
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textbox = gr.Textbox(placeholder='
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submit_button = gr.Button('Submit', variant='primary')
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chatbot = gr.Chatbot(label='TonicYi-6B-200K')
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with gr.Accordion(label='Advanced options', open=False):
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max_new_tokens = gr.Slider(label='Max New Tokens', minimum=1, maximum=55000, step=1, value=
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temperature = gr.Slider(label='Temperature', minimum=0.1, maximum=4.0, step=0.1, value=1.2)
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top_p = gr.Slider(label='Top-P (nucleus sampling)', minimum=0.05, maximum=1.0, step=0.05, value=0.9)
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top_k = gr.Slider(label='Top-K', minimum=1, maximum=1000, step=1, value=900)
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do_sample_checkbox = gr.Checkbox(label='Disable for faster inference', value=False
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submit_button.click(
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fn=predict,
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inputs=[textbox, max_new_tokens, temperature, top_p, top_k, do_sample_checkbox],
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outputs=chatbot
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)
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demo.launch()
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os.environ['PYTORCH_CUDA_ALLOC_CONF'] = 'max_split_size_mb:120'
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model_id = "larryvrh/Yi-6B-200K-Llamafied"
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tokenizer_path = "./"
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eos_token_id = 7
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DESCRIPTION = """
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# 👋🏻Welcome to 🙋🏻♂️Tonic's🧑🏻🚀YI-200K🚀"
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tokenizer = AutoModelForCausalLM.from_pretrained(tokenizer_path)
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tokenizer = YiTokenizer.from_pretrained(tokenizer_path)
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model = AutoModelForCausalLM.from_pretrained(model_id=tokenizer_path, device_map="auto", torch_dtype="auto", trust_remote_code=True)
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def format_prompt(user_message, system_message="I am YiTonic, an AI language model created by Tonic-AI. I am a cautious assistant. I carefully follow instructions. I am helpful and harmless and I follow ethical guidelines and promote positive behavior."):
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prompt = f"<|im_start|>assistant\n{self.system_message}<|im_end|>\n<|im_start|>\nuser\n{user_message}<|im_end|>\nassistant\n"
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return prompt
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def predict(message, system_message, max_new_tokens=4056, temperature=3.5, top_p=0.9, top_k=800, do_sample=False):
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formatted_prompt = format_prompt(message, system_message)
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input_ids = tokenizer.encode(formatted_prompt, return_tensors='pt')
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input_ids = input_ids.to(model.device)
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response_ids = model.generate(
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input_ids,
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max_length=max_new_tokens + input_ids.shape[1],
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pad_token_id=tokenizer.eos_token_id,
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do_sample=do_sample
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)
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response = tokenizer.decode(response_ids[:, input_ids.shape[-1]:][0], skip_special_tokens=True)
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return [("bot", response)]
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with gr.Blocks(theme='ParityError/Anime') as demo:
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gr.Markdown(DESCRIPTION)
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with gr.Group():
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textbox = gr.Textbox(placeholder='Your Message Here', label='Your Message', lines=2)
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system_prompt = gr.Textbox(placeholder='Provide a System Prompt In The First Person', label='System Prompt', lines=2, value="You are YiTonic, an AI language model created by Tonic-AI. You are a cautious assistant. You carefully follow instructions. You are helpful and harmless and you follow ethical guidelines and promote positive behavior.")
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with gr.Group():
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submit_button = gr.Button('Submit', variant='primary')
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with gr.Accordion(label='Advanced options', open=False):
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max_new_tokens = gr.Slider(label='Max New Tokens', minimum=1, maximum=55000, step=1, value=4056)
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temperature = gr.Slider(label='Temperature', minimum=0.1, maximum=4.0, step=0.1, value=1.2)
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top_p = gr.Slider(label='Top-P (nucleus sampling)', minimum=0.05, maximum=1.0, step=0.05, value=0.9)
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top_k = gr.Slider(label='Top-K', minimum=1, maximum=1000, step=1, value=900)
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do_sample_checkbox = gr.Checkbox(label='Disable for faster inference', value=False)
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submit_button.click(
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fn=predict,
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inputs=[textbox, system_prompt, max_new_tokens, temperature, top_p, top_k, do_sample_checkbox],
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outputs=chatbot
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)
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with gr.Group():
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chatbot = gr.Chatbot(label='TonicYi-6B-200K')
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demo.launch()
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