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init deploy code
Browse files- app.py +143 -0
- requirements.txt +9 -0
- style.css +16 -0
    	
        app.py
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            import os
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            from threading import Thread
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            from typing import Iterator
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            import gradio as gr
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            import spaces
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            import torch
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            from transformers import AutoModelForCausalLM, AutoTokenizer, TextIteratorStreamer
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            MAX_MAX_NEW_TOKENS = 2048
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            DEFAULT_MAX_NEW_TOKENS = 1024
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            MAX_INPUT_TOKEN_LENGTH = int(os.getenv("MAX_INPUT_TOKEN_LENGTH", "4096"))
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            DESCRIPTION = """\
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            # Machine Mindset
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            MM (Machine_Mindset) series models are developed through a collaboration between FarReel AI Lab(formerly known as the ChatLaw project) and Peking University's Deep Research Institute. These models are large-scale language models for various MBTI types in both Chinese and English, built on the Baichuan and LLaMA2 platforms.
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            """
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            LICENSE = """
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            ---
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            * Our code adheres to the Apache 2.0 open-source license. Please refer to the [LICENSE](https://github.com/PKU-YuanGroup/Machine-Mindset/blob/main/LICENSE) for specific details of the open-source agreement.
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            * Our model weights are subject to an open-source agreement based on the original weights, with specific details provided in the Chinese version under the baichuan open-source license. For commercial use, please refer to [model_LICENSE](https://huggingface.co/JessyTsu1/Machine_Mindset_zh_INTP/resolve/main/Machine_Mindset%E5%9F%BA%E4%BA%8Ebaichuan%E7%9A%84%E6%A8%A1%E5%9E%8B%E7%A4%BE%E5%8C%BA%E8%AE%B8%E5%8F%AF%E5%8D%8F%E8%AE%AE.pdf) for further information.
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            * The English version follows the open-source agreement under the [llama2 license](https://ai.meta.com/resources/models-and-libraries/llama-downloads/).
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            """
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            if not torch.cuda.is_available():
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                DESCRIPTION += "\n<p>Running on CPU 🥶 This demo does not work on CPU.</p>"
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            if torch.cuda.is_available():
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                model_id = "FarReelAILab/Machine_Mindset_en_INTJ"
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                model = AutoModelForCausalLM.from_pretrained(model_id, torch_dtype=torch.float16, device_map="auto")
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                tokenizer = AutoTokenizer.from_pretrained(model_id)
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                tokenizer.use_default_system_prompt = False
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            @spaces.GPU
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            def generate(
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                message: str,
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                chat_history: list[tuple[str, str]],
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                system_prompt: str,
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                max_new_tokens: int = 1024,
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                temperature: float = 0.6,
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                top_p: float = 0.9,
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                top_k: int = 50,
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                repetition_penalty: float = 1.2,
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            ) -> Iterator[str]:
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                conversation = []
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                if system_prompt:
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                    conversation.append({"role": "system", "content": system_prompt})
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                for user, assistant in chat_history:
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                    conversation.extend([{"role": "user", "content": user}, {"role": "assistant", "content": assistant}])
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                conversation.append({"role": "user", "content": message})
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                input_ids = tokenizer.apply_chat_template(conversation, return_tensors="pt")
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                if input_ids.shape[1] > MAX_INPUT_TOKEN_LENGTH:
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                    input_ids = input_ids[:, -MAX_INPUT_TOKEN_LENGTH:]
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                    gr.Warning(f"Trimmed input from conversation as it was longer than {MAX_INPUT_TOKEN_LENGTH} tokens.")
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                input_ids = input_ids.to(model.device)
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                streamer = TextIteratorStreamer(tokenizer, timeout=10.0, skip_prompt=True, skip_special_tokens=True)
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                generate_kwargs = dict(
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                    {"input_ids": input_ids},
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                    streamer=streamer,
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                    max_new_tokens=max_new_tokens,
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                    do_sample=True,
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                    top_p=top_p,
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                    top_k=top_k,
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                    temperature=temperature,
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                    num_beams=1,
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                    repetition_penalty=repetition_penalty,
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                )
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                t = Thread(target=model.generate, kwargs=generate_kwargs)
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                t.start()
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                outputs = []
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                for text in streamer:
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                    outputs.append(text)
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                    yield "".join(outputs)
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            chat_interface = gr.ChatInterface(
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                fn=generate,
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                additional_inputs=[
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                    gr.Textbox(label="System prompt", lines=6),
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                    gr.Slider(
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                        label="Max new tokens",
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                        minimum=1,
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                        maximum=MAX_MAX_NEW_TOKENS,
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                        step=1,
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                        value=DEFAULT_MAX_NEW_TOKENS,
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                    ),
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                    gr.Slider(
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                        label="Temperature",
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                        minimum=0.1,
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                        maximum=4.0,
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                        step=0.1,
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                        value=0.6,
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                    ),
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                    gr.Slider(
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                        label="Top-p (nucleus sampling)",
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                        minimum=0.05,
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                        maximum=1.0,
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                        step=0.05,
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                        value=0.9,
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                    ),
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                    gr.Slider(
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                        label="Top-k",
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                        minimum=1,
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                        maximum=1000,
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                        step=1,
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                        value=50,
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                    ),
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                    gr.Slider(
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                        label="Repetition penalty",
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                        minimum=1.0,
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                        maximum=2.0,
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                        step=0.05,
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                        value=1.2,
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                    ),
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                ],
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                stop_btn=None,
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                examples=[
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                    ["Hello there! How are you doing?"],
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                    ["Can you explain briefly to me what is the Python programming language?"],
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                    ["Explain the plot of Cinderella in a sentence."],
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                    ["How many hours does it take a man to eat a Helicopter?"],
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                    ["Write a 100-word article on 'Benefits of Open-Source in AI research'"],
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                ],
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            )
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            with gr.Blocks(css="style.css") as demo:
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                gr.Markdown(DESCRIPTION)
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                gr.DuplicateButton(value="Duplicate Space for private use", elem_id="duplicate-button")
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                chat_interface.render()
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                gr.Markdown(LICENSE)
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            if __name__ == "__main__":
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                demo.queue(max_size=20).launch()
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        requirements.txt
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            accelerate==0.23.0
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            bitsandbytes==0.41.1
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            gradio==3.48.0
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            protobuf==3.20.3
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            scipy==1.11.2
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            sentencepiece==0.1.99
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            spaces==0.16.1
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            torch==2.0.0
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            transformers==4.34.0
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        style.css
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            h1 {
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              text-align: center;
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            }
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            #duplicate-button {
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              margin: auto;
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              color: white;
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              background: #1565c0;
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              border-radius: 100vh;
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            }
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            .contain {
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              max-width: 900px;
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              margin: auto;
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              padding-top: 1.5rem;
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            }
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