Commit
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0d49ac1
1
Parent(s):
66c9b7e
Match openai completions api
Browse files
main.py
CHANGED
@@ -2,11 +2,14 @@ import fastapi
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import json
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import markdown
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import uvicorn
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from fastapi
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from fastapi.middleware.cors import CORSMiddleware
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from sse_starlette.sse import EventSourceResponse
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from ctransformers import AutoModelForCausalLM
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from pydantic import BaseModel
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llm = AutoModelForCausalLM.from_pretrained("TheBloke/WizardCoder-15B-1.0-GGML",
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model_file="WizardCoder-15B-1.0.ggmlv3.q4_0.bin",
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@@ -43,11 +46,44 @@ async def index():
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class ChatCompletionRequest(BaseModel):
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prompt: str
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@app.post("/v1/completions")
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async def completion(request: ChatCompletionRequest, response_mode=None):
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response = llm(request.prompt)
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return response
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@app.post("/v1/chat/completions")
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async def chat(request: ChatCompletionRequest, response_mode=None):
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tokens = llm.tokenize(request.prompt)
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import json
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import markdown
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import uvicorn
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from fastapi import HTTPException
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from fastapi.responses import HTMLResponse, HTTPException
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from fastapi.middleware.cors import CORSMiddleware
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from sse_starlette.sse import EventSourceResponse
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from ctransformers import AutoModelForCausalLM
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from pydantic import BaseModel
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from typing import List, Dict, Any
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llm = AutoModelForCausalLM.from_pretrained("TheBloke/WizardCoder-15B-1.0-GGML",
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model_file="WizardCoder-15B-1.0.ggmlv3.q4_0.bin",
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class ChatCompletionRequest(BaseModel):
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prompt: str
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class Message(BaseModel):
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role: str
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content: str
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class ChatCompletionRequestV2(BaseModel):
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messages: List[Message]
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max_tokens: int = 100
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@app.post("/v1/completions")
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async def completion(request: ChatCompletionRequest, response_mode=None):
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response = llm(request.prompt)
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return response
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@app.post("/v2/chat/completions")
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async def chat(request: ChatCompletionRequestV2):
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tokens = llm.tokenize([message.content for message in request.messages])
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try:
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chat_chunks = llm.generate(tokens, max_tokens=request.max_tokens)
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except Exception as e:
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raise HTTPException(status_code=500, detail=str(e))
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def format_response(chat_chunks) -> Dict[str, Any]:
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response = {
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'choices': []
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}
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for chat_chunk in chat_chunks:
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response['choices'].append({
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'message': {
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'role': 'system',
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'content': llm.detokenize(chat_chunk)
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},
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'finish_reason': 'stop' if llm.detokenize(chat_chunk) == "[DONE]" else 'unknown'
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})
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return response
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return format_response(chat_chunks)
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@app.post("/v1/chat/completions")
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async def chat(request: ChatCompletionRequest, response_mode=None):
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tokens = llm.tokenize(request.prompt)
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