:pencil: [Doc] Readme: Features, deployment, api usage examples, and huggingface space configs
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README.md
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---
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title: HF LLM API
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emoji: ☯️
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colorFrom: gray
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colorTo: gray
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sdk: docker
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app_port: 23333
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---
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## HF-LLM-API
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API for LLM inference in Huggingface spaces.
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## Features
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✅ Implemented:
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- Support Models
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- `mixtral-8x7b`
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- Support OpenAI API format
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- Can use api endpoint via official `openai-python` package
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- Support stream response
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- Support infinite-round chat
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- Support Docker deployment
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🔨 In progress:
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- [ ] Support more models
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## Run API service
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### Run in Command Line
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**Install dependencies:**
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```bash
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# pipreqs . --force --mode no-pin
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pip install -r requirements.txt
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```
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**Run API:**
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```bash
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python -m apis.chat_api
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```
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## Run via Docker
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**Docker build:**
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```bash
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sudo docker build -t hf-llm-api:1.0 . --build-arg http_proxy=$http_proxy --build-arg https_proxy=$https_proxy
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```
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**Docker run:**
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```bash
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# no proxy
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sudo docker run -p 23333:23333 hf-llm-api:1.0
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# with proxy
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sudo docker run -p 23333:23333 --env http_proxy="http://<server>:<port>" hf-llm-api:1.0
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```
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## API Usage
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### Using `openai-python`
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See: [examples/chat_with_openai.py](https://github.com/Hansimov/hf-llm-api/blob/main/examples/chat_with_openai.py)
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```py
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from openai import OpenAI
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# If runnning this service with proxy, you might need to unset `http(s)_proxy`.
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base_url = "http://127.0.0.1:23333"
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api_key = "sk-xxxxx"
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client = OpenAI(base_url=base_url, api_key=api_key)
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response = client.chat.completions.create(
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model="mixtral-8x7b",
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messages=[
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{
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"role": "user",
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"content": "what is your model",
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}
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],
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stream=True,
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)
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for chunk in response:
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if chunk.choices[0].delta.content is not None:
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print(chunk.choices[0].delta.content, end="", flush=True)
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elif chunk.choices[0].finish_reason == "stop":
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print()
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else:
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pass
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```
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### Using post requests
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See: [examples/chat_with_post.py](https://github.com/Hansimov/hf-llm-api/blob/main/examples/chat_with_post.py)
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```py
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import ast
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import httpx
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import json
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import re
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# If runnning this service with proxy, you might need to unset `http(s)_proxy`.
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chat_api = "http://127.0.0.1:23333"
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api_key = "sk-xxxxx"
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requests_headers = {}
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requests_payload = {
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"model": "mixtral-8x7b",
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"messages": [
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{
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"role": "user",
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"content": "what is your model",
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}
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],
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"stream": True,
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}
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with httpx.stream(
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"POST",
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chat_api + "/chat/completions",
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headers=requests_headers,
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json=requests_payload,
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timeout=httpx.Timeout(connect=20, read=60, write=20, pool=None),
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) as response:
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# https://docs.aiohttp.org/en/stable/streams.html
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# https://github.com/openai/openai-cookbook/blob/main/examples/How_to_stream_completions.ipynb
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response_content = ""
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for line in response.iter_lines():
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remove_patterns = [r"^\s*data:\s*", r"^\s*\[DONE\]\s*"]
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for pattern in remove_patterns:
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line = re.sub(pattern, "", line).strip()
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if line:
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try:
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line_data = json.loads(line)
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except Exception as e:
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try:
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line_data = ast.literal_eval(line)
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except:
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print(f"Error: {line}")
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raise e
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# print(f"line: {line_data}")
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delta_data = line_data["choices"][0]["delta"]
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finish_reason = line_data["choices"][0]["finish_reason"]
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if "role" in delta_data:
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role = delta_data["role"]
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if "content" in delta_data:
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delta_content = delta_data["content"]
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response_content += delta_content
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print(delta_content, end="", flush=True)
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if finish_reason == "stop":
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print()
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```
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