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import json
import os
import requests
import gradio as gr
# Environment variables for backend URL and model name
BACKEND_URL = os.getenv('BACKEND_URL','')
MODEL_NAME = os.getenv('MODEL_NAME')
API_KEY = os.getenv('API_KEY')
# Custom headers for the API request
HEADERS = {
'orionstar-api-key': API_KEY,
'Content-Type': 'application/json'
}
def clear_session():
"""Clears the chat session."""
return '', None
def chat_stream_generator(url, payload):
"""Generator function to stream chat responses from the backend."""
answer = ''
with requests.post(url, json=payload, headers=HEADERS, stream=True) as response:
if response.encoding is None:
response.encoding = 'utf-8'
for line in response.iter_lines(decode_unicode=True):
if line:
line = line.replace('data: ', '')
if line != '[DONE]':
data = json.loads(line)
if 'choices' in data and data['choices']:
choice = data['choices'][0]
if 'delta' in choice and choice['delta'].get('content'):
answer += choice['delta']['content']
yield answer
def generate_chat(input_text: str, history=None):
"""Generates chat responses and updates the chat history."""
if input_text is None:
input_text = ''
if history is None:
history = []
history = history[-5:] # Keep the last 5 messages in history
url = BACKEND_URL
payload = {
"model": MODEL_NAME,
"stream": True,
"messages": [
{"role": "user", "content": input_text}
]
}
gen = chat_stream_generator(url, payload)
for response in gen:
history.append((input_text, response))
yield None, history
history.pop()
history.append((input_text, response))
return None, gen
# Gradio interface
block = gr.Blocks()
with block as demo:
gr.Markdown("<center><h1>OrionStar-Yi-34B-Chat Demo</h1></center>")
gr.Markdown("""
* The Yi series LLM models are large-scale models open-sourced by the 01.AI team, achieving commendable results on various authoritative Chinese, English, and general domain benchmarks.
* [Orionstar](https://www.orionstar.com/) has further tapped into the potential of the Orionstar-Yi-34B-Chat with the Yi-34B model. By deeply training on a large corpus of high-quality fine-tuning data, we are dedicated to making it an outstanding open-source alternative in the ChatGPT field.
* Orionstar-Yi-34B-Chat performs impressively on mainstream evaluation sets such as C-Eval, MMLU, and CMMLU, significantly outperforming other open-source conversational models around the world(as of November 2023). For a detailed comparison with other open-source models, see [here](https://github.com/OrionStarAI/OrionStar-Yi-34B-Chat).
* Please click Star to support us on [Github](https://github.com/OrionStarAI/OrionStar-Yi-34B-Chat).""")
chatbot = gr.Chatbot(label='OrionStar-Yi-34B-Chat', elem_classes="control-height")
message = gr.Textbox(label='Input')
with gr.Row():
submit = gr.Button("🚀 Submit")
clear_history = gr.Button("🧹 Clear History")
submit.click(
fn=generate_chat,
inputs=[message, chatbot],
outputs=[message, chatbot]
)
clear_history.click(
fn=clear_session,
inputs=[],
outputs=[message, chatbot],
queue=False
)
demo.queue(api_open=False).launch(server_name='0.0.0.0', height=800, share=False,show_api=False)