init'
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ChatGLM3/aiimg.sh
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ChatGLM3/aiimg.sh
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python3 -m http.server 8200
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ChatGLM3/api.py
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ChatGLM3/api.py
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from typing import Union
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from fastapi import FastAPI, Header, BackgroundTasks,Request,Body
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from urllib.parse import unquote
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import re
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import pickle
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import os
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from fastapi.responses import JSONResponse
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import asyncio
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from pydantic import BaseModel
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import time
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from transformers import AutoTokenizer, AutoModel
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import uvicorn, json, datetime
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import torch
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import json
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import base64
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import requests
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# from tentcentSMS import sendSms
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#使用int8的量化模型
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# tokenizer = AutoTokenizer.from_pretrained("THUDM/chatglm2-6b-int4", trust_remote_code=True)
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# #model = AutoModel.from_pretrained("THUDM/chatglm2-6b-int4", trust_remote_code=True).half().quantize(8).cuda()
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# model = AutoModel.from_pretrained("THUDM/chatglm2-6b-int4",trust_remote_code=True).cuda()
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# ChatGLM3
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tokenizer = AutoTokenizer.from_pretrained("THUDM/chatglm3-6b", trust_remote_code=True)
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model = AutoModel.from_pretrained("THUDM/chatglm3-6b", trust_remote_code=True, device='cuda')
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model.eval()
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#显存满配全开
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#tokenizer = AutoTokenizer.from_pretrained("THUDM/chatglm2-6b", trust_remote_code=True)
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#model = AutoModel.from_pretrained("THUDM/chatglm2-6b", trust_remote_code=True).cuda()
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#model.eval()
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def submit_post(url: str, data: dict):
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"""
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Submit a POST request to the given URL with the given data.
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"""
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return requests.post(url, data=json.dumps(data))
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def save_encoded_image(b64_image: str, output_path: str):
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"""
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Save the given image to the given output path.
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"""
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with open(output_path, "wb") as image_file:
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image_file.write(base64.b64decode(b64_image))
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DEVICE = "cuda"
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DEVICE_ID = "0"
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CUDA_DEVICE = f"{DEVICE}:{DEVICE_ID}" if DEVICE_ID else DEVICE
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def torch_gc():
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if torch.cuda.is_available():
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with torch.cuda.device(CUDA_DEVICE):
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torch.cuda.empty_cache()
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torch.cuda.ipc_collect()
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app = FastAPI()
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class Item(BaseModel):
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query: Union[str, None] = None
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@app.get("/")
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def index():
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return "hello"
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# AI生成图片
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@app.post("/img")
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async def img(
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query=Body(None),
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appid: Union[str, None] = Header(default=None),
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):
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# print("console :,", "appid", appid, "bid", bid, "requestid", requestid, "uid", uid)
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print('query',query)
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print('query[query]',query["query"])
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# 获取请求参数
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global model, tokenizer
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# time.sleep(10)
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# print("item", item)
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history = [] #默认空数组
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prompt=''
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max_length=None
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top_p=None
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temperature=None
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response=None
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try:
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query = unquote(query["query"], "utf-8")
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# 判断有没有'/img'标识符
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if ('/img' in query) is True:
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query=query.replace('/img', '')
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prompt=query
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txt2img_url = 'http://127.0.0.1:7860/sdapi/v1/txt2img'
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data = {'prompt': prompt}
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res = submit_post(txt2img_url, data)
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# 以时间戳命名
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now =str(time.time())
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save_encoded_image(res.json()['images'][0], f'img/{now}.png')
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# 网络图片
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response=f'#web_img http://aiimg.hackrobot.cn/{now}.png'
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print('response',response)
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# return responseimg
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else:
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prompt = query #问题
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# 请求ai模型
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response, history = model.chat(tokenizer,
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prompt,
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history=history,
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max_length=max_length if max_length else 2048,
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top_p=top_p if top_p else 0.7,
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temperature=temperature if temperature else 0.95)
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except(ValueError, ArithmeticError):
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print('ValueError',ValueError)
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print('ArithmeticError',ArithmeticError)
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prompt = ""
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content = {
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"answer": response,
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"answer_type": "text",
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}
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headers = {"Content-Type": "application/json"}
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return JSONResponse(content=content, headers=headers)
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ChatGLM3/api.sh
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ChatGLM3/api.sh
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uvicorn api:app --port=8000
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stable-diffusion-webui/webuiApi.sh
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stable-diffusion-webui/webuiApi.sh
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python3 launch.py --api
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