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import gradio as gr |
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from gpt4all import GPT4All |
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from huggingface_hub import hf_hub_download |
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title = "Mistral-7B-Instruct-GGUF Run On CPU-Basic Free Hardware" |
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description = """ |
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π [Mistral AI's Mistral 7B Instruct v0.1](https://huggingface.co/mistralai/Mistral-7B-Instruct-v0.1) [GGUF format model](https://huggingface.co/TheBloke/Mistral-7B-Instruct-v0.1-GGUF) , 4-bit quantization balanced quality gguf version, running on CPU. English Only (Also support other languages but the quality's not good). Using [GitHub - llama.cpp](https://github.com/ggerganov/llama.cpp) [GitHub - gpt4all](https://github.com/nomic-ai/gpt4all). |
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π¨ Running on CPU-Basic free hardware. Suggest duplicating this space to run without a queue. |
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Mistral does not support system prompt symbol (such as ```<<SYS>>```) now, input your system prompt in the first message if you need. Learn more: [Guardrailing Mistral 7B](https://docs.mistral.ai/usage/guardrailing). |
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""" |
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""" |
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[Model From TheBloke/Mistral-7B-Instruct-v0.1-GGUF](https://huggingface.co/TheBloke/Mistral-7B-Instruct-v0.1-GGUF) |
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[Mistral-instruct-v0.1 System prompt](https://docs.mistral.ai/usage/guardrailing) |
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""" |
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model_path = "models" |
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model_name = "mistral-7b-instruct-v0.1.Q4_K_M.gguf" |
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hf_hub_download(repo_id="TheBloke/Mistral-7B-Instruct-v0.1-GGUF", filename=model_name, local_dir=model_path, local_dir_use_symlinks=False) |
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print("Start the model init process") |
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model = model = GPT4All(model_name, model_path, allow_download = False, device="cpu") |
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print("Finish the model init process") |
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model.config["promptTemplate"] = "[INST] {0} [/INST]" |
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model.config["systemPrompt"] = "" |
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model._is_chat_session_activated = False |
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max_new_tokens = 2048 |
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def generater(message, history, temperature, top_p, top_k): |
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prompt = "<s>" |
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for user_message, assistant_message in history: |
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prompt += model.config["promptTemplate"].format(user_message) |
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prompt += assistant_message + "</s>" |
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prompt += model.config["promptTemplate"].format(message) |
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outputs = [] |
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for token in model.generate(prompt=prompt, temp=temperature, top_k = top_k, top_p = top_p, max_tokens = max_new_tokens, streaming=True): |
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outputs.append(token) |
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yield "".join(outputs) |
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def vote(data: gr.LikeData): |
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if data.liked: |
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return |
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else: |
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return |
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chatbot = gr.Chatbot(avatar_images=('resourse/user-icon.png', 'resourse/chatbot-icon.png'),bubble_full_width = False) |
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additional_inputs=[ |
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gr.Slider( |
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label="temperature", |
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value=0.5, |
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minimum=0.0, |
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maximum=2.0, |
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step=0.05, |
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interactive=True, |
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info="Higher values like 0.8 will make the output more random, while lower values like 0.2 will make it more focused and deterministic.", |
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), |
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gr.Slider( |
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label="top_p", |
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value=1.0, |
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minimum=0.0, |
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maximum=1.0, |
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step=0.01, |
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interactive=True, |
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info="0.1 means only the tokens comprising the top 10% probability mass are considered. Suggest set to 1 and use temperature. 1 means 100% and will disable it", |
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), |
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gr.Slider( |
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label="top_k", |
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value=40, |
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minimum=0, |
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maximum=1000, |
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step=1, |
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interactive=True, |
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info="limits candidate tokens to a fixed number after sorting by probability. Setting it higher than the vocabulary size deactivates this limit.", |
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) |
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] |
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character = "Sherlock Holmes" |
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series = "Arthur Conan Doyle's novel" |
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iface = gr.ChatInterface( |
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fn = generater, |
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title=title, |
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description = description, |
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chatbot=chatbot, |
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additional_inputs=additional_inputs, |
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examples=[ |
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["Hello there! How are you doing?"], |
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["How many hours does it take a man to eat a Helicopter?"], |
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["You are a helpful and honest assistant. Always answer as helpfully as possible. If a question does not make any sense, or is not factually coherent, explain why instead of answering something not correct. If you don't know the answer to a question, please don't share false information."], |
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["I want you to act as a spoken English teacher and improver. I will speak to you in English and you will reply to me in English to practice my spoken English. I want you to strictly correct my grammar mistakes, typos, and factual errors. I want you to ask me a question in your reply. Now let's start practicing, you could ask me a question first. Remember, I want you to strictly correct my grammar mistakes, typos, and factual errors."], |
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[f"I want you to act like {character} from {series}. I want you to respond and answer like {character} using the tone, manner and vocabulary {character} would use. Do not write any explanations. Only answer like {character}. You must know all of the knowledge of {character}."] |
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] |
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) |
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with gr.Blocks(css="resourse/style/custom.css") as demo: |
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chatbot.like(vote, None, None) |
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iface.render() |
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if __name__ == "__main__": |
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demo.queue(max_size=3).launch() |
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