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Browse files- .DS_Store +0 -0
- .gitignore +2 -0
- .streamlit/config.toml +2 -0
- install_env.sh +5 -0
- main.py +58 -0
- requirements.txt +6 -0
.DS_Store
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Binary file (6.15 kB). View file
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.gitignore
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# environment
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bloom_demo
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.streamlit/config.toml
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[browser]
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gatherUsageStats = false
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install_env.sh
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#!sh
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conda create -p bloom_demo python=3.8
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source activate ./bloom_demo
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pip install -r requirements.txt --extra-index-url https://download.pytorch.org/whl/cu111
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# streamlit run main.py
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main.py
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# ------------------- LIBRARIES -------------------- #
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import os, logging, torch, streamlit as st
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from transformers import (
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AutoTokenizer, AutoModelForCausalLM)
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# --------------------- HELPER --------------------- #
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def C(text, color="yellow"):
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color_dict: dict = dict(
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red="\033[01;31m",
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green="\033[01;32m",
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yellow="\033[01;33m",
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blue="\033[01;34m",
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magenta="\033[01;35m",
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cyan="\033[01;36m",
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)
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color_dict[None] = "\033[0m"
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return (
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f"{color_dict.get(color, None)}"
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f"{text}{color_dict[None]}")
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# ------------------ ENVIORNMENT ------------------- #
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os.environ["HF_ENDPOINT"] = "https://huggingface.co"
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device = ("cuda"
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if torch.cuda.is_available() else "cpu")
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logging.info(C("[INFO] "f"device = {device}"))
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# ------------------ INITITALIZE ------------------- #
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@st.cache_resource
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def model_init():
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tokenizer = AutoTokenizer.from_pretrained(
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"ckip-joint/bloom-1b1-zh")
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model = AutoModelForCausalLM.from_pretrained(
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"ckip-joint/bloom-1b1-zh",
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# Ref.: Eric, Thanks!
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# torch_dtype="auto",
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# device_map="auto",
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# Ref. for `half`: Chan-Jan, Thanks!
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).eval().to(device)
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st.balloons()
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logging.info(C("[INFO] "f"Model init success!"))
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return tokenizer, model
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tokenizer, model = model_init()
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# ===================== INPUT ====================== #
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# prompt = "\u554F\uFF1A\u53F0\u7063\u6700\u9AD8\u7684\u5EFA\u7BC9\u7269\u662F\uFF1F\u7B54\uFF1A" #@param {type:"string"}
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prompt = st.text_input("Prompt: ")
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# =================== INFERENCE ==================== #
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if prompt:
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with torch.no_grad():
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[texts_out] = model.generate(
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**tokenizer(
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prompt, return_tensors="pt"
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).to(device))
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output_text = tokenizer.decode(texts_out)
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st.markdown(output_text)
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requirements.txt
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torch==1.10.2+cu111
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transformers
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streamlit
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# not really
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ipython
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