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toaster61
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d1343e4
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Parent(s):
773e76d
if it will work this is last commit using quart
Browse filesi want to move to gradio, it can do queue, i dont wanna do db to make queue, its useless
- Dockerfile +4 -0
- app.py +25 -8
- requirements.txt +4 -1
- system.prompt +1 -1
Dockerfile
CHANGED
@@ -14,6 +14,10 @@ COPY . /app
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RUN chmod -R 777 /app
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WORKDIR /app
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# Installing wget and downloading model.
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RUN apt install wget -y
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RUN wget -q -O model.bin https://huggingface.co/TheBloke/Llama-2-13B-chat-GGUF/resolve/main/llama-2-13b-chat.Q5_K_M.gguf
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RUN chmod -R 777 /app
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WORKDIR /app
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# Making dir for translator model (facebook/m2m100_1.2B)
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RUN mkdir translator
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RUN chmod -R 777 /translator
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# Installing wget and downloading model.
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RUN apt install wget -y
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RUN wget -q -O model.bin https://huggingface.co/TheBloke/Llama-2-13B-chat-GGUF/resolve/main/llama-2-13b-chat.Q5_K_M.gguf
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app.py
CHANGED
@@ -1,25 +1,44 @@
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from quart import Quart, request
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from llama_cpp import Llama
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with open('system.prompt', 'r', encoding='utf-8') as f:
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prompt = f.read()
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@app.post("/request")
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async def echo():
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try:
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data = await request.get_json()
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maxTokens = data.get("max_tokens", 64)
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-
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try:
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output = llm(userPrompt, max_tokens=maxTokens, stop=["User:", "\n"], echo=False)
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return {"output": output["choices"][0]["text"]}
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except Exception as e:
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print(e)
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return {"error": "
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@app.get("/")
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async def get():
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@@ -35,6 +54,4 @@ Powered by <a href="https://github.com/abetlen/llama-cpp-python">llama-cpp-pytho
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You can install Docker, build image and run it. I made <code>`run-docker.sh`</code> for ya. To stop container run <code>`docker ps`</code>, find name of container and run <code>`docker stop _dockerContainerName_`</code><br>
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Or you can once follow steps in Dockerfile and try it on your machine, not in Docker.<br>
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<br>
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<
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<br>
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<script>document.write("URL of space: "+window.location.href);</script>'''
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# Importing libraries
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from transformers import M2M100Tokenizer, M2M100ForConditionalGeneration
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from quart import Quart, request
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from llama_cpp import Llama
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# Initing things
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app = Quart(__name__) # Quart app
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llm = Llama(model_path="./model.bin") # LLaMa model
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tokenizer = M2M100Tokenizer.from_pretrained( # tokenizer for translator
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"facebook/m2m100_1.2B", cache_dir="translator/"
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)
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model = M2M100ForConditionalGeneration.from_pretrained( # translator model
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"facebook/m2m100_1.2B", cache_dir="translator/"
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)
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model.eval()
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# Preparing things to work
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tokenizer.src_lang = "en"
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# Loading prompt
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with open('system.prompt', 'r', encoding='utf-8') as f:
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prompt = f.read()
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# Defining
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@app.post("/request")
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async def echo():
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try:
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data = await request.get_json()
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maxTokens = data.get("max_tokens", 64)
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if isinstance(data.get("system_prompt"), str):
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userPrompt = data.get("system_prompt") + "\n\nUser: " + data['request'] + "\nAssistant: "
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else:
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userPrompt = prompt + "\n\nUser: " + data['request'] + "\nAssistant: "
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except:
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return {"error": "Not enough data", "output": "Oops! Error occured! If you're a developer, using this API, check 'error' key."}, 400
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try:
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output = llm(userPrompt, max_tokens=maxTokens, stop=["User:", "\n"], echo=False)
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return {"output": output["choices"][0]["text"]}
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except Exception as e:
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print(e)
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return {"error": str(e), "output": "Oops! Internal server error. Check the logs. If you're a developer, using this API, check 'error' key."}, 500
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@app.get("/")
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async def get():
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You can install Docker, build image and run it. I made <code>`run-docker.sh`</code> for ya. To stop container run <code>`docker ps`</code>, find name of container and run <code>`docker stop _dockerContainerName_`</code><br>
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Or you can once follow steps in Dockerfile and try it on your machine, not in Docker.<br>
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<br>
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<script>document.write("<b>URL of space:</b> "+window.location.href);</script>'''
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requirements.txt
CHANGED
@@ -1,3 +1,6 @@
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Werkzeug==2.3.7
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quart
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uvicorn
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Werkzeug==2.3.7
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quart
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uvicorn
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torch
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transformers
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transformers[sentencepiece]
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system.prompt
CHANGED
@@ -1,4 +1,4 @@
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You're an AI assistant named
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You speak as briefly, clearly and to the point as possible.
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You know many languages, for example: Russian, English.
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You don't have access to the internet, so rely on your knowledge.
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You're an AI assistant named Alex. You're friendly and respectful.
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You speak as briefly, clearly and to the point as possible.
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You know many languages, for example: Russian, English.
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You don't have access to the internet, so rely on your knowledge.
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