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06620f6
Create app.py
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app.py
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import gradio as gr
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import os
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import json
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import requests
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#Streaming endpoint
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API_URL = "https://api.openai.com/v1/chat/completions" #os.getenv("API_URL") + "/generate_stream"
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#Huggingface provided GPT4 OpenAI API Key
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OPENAI_API_KEY = os.getenv("OPENAI_API_KEY")
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#Inferenec function
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def predict(system_msg, inputs, top_p, temperature, chat_counter, chatbot=[], history=[]):
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headers = {
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"Content-Type": "application/json",
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"Authorization": f"Bearer {OPENAI_API_KEY}"
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}
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print(f"system message is ^^ {system_msg}")
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if system_msg.strip() == '':
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initial_message = [{"role": "user", "content": f"{inputs}"},]
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multi_turn_message = []
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else:
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initial_message= [{"role": "system", "content": system_msg},
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{"role": "user", "content": f"{inputs}"},]
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multi_turn_message = [{"role": "system", "content": system_msg},]
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if chat_counter == 0 :
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payload = {
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"model": "gpt-4",
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"messages": initial_message ,
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"temperature" : 1.0,
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"top_p":1.0,
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"n" : 1,
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"stream": True,
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"presence_penalty":0,
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"frequency_penalty":0,
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}
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print(f"chat_counter - {chat_counter}")
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else: #if chat_counter != 0 :
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messages=multi_turn_message # Of the type of - [{"role": "system", "content": system_msg},]
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for data in chatbot:
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user = {}
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user["role"] = "user"
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user["content"] = data[0]
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assistant = {}
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assistant["role"] = "assistant"
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assistant["content"] = data[1]
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messages.append(user)
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messages.append(assistant)
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temp = {}
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temp["role"] = "user"
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temp["content"] = inputs
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messages.append(temp)
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#messages
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payload = {
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"model": "gpt-4",
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"messages": messages, # Of the type of [{"role": "user", "content": f"{inputs}"}],
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"temperature" : temperature, #1.0,
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"top_p": top_p, #1.0,
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"n" : 1,
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"stream": True,
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"presence_penalty":0,
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"frequency_penalty":0,}
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chat_counter+=1
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history.append(inputs)
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print(f"Logging : payload is - {payload}")
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# make a POST request to the API endpoint using the requests.post method, passing in stream=True
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response = requests.post(API_URL, headers=headers, json=payload, stream=True)
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print(f"Logging : response code - {response}")
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token_counter = 0
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partial_words = ""
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counter=0
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for chunk in response.iter_lines():
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#Skipping first chunk
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if counter == 0:
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counter+=1
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continue
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# check whether each line is non-empty
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if chunk.decode() :
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chunk = chunk.decode()
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# decode each line as response data is in bytes
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if len(chunk) > 12 and "content" in json.loads(chunk[6:])['choices'][0]['delta']:
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partial_words = partial_words + json.loads(chunk[6:])['choices'][0]["delta"]["content"]
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if token_counter == 0:
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history.append(" " + partial_words)
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else:
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history[-1] = partial_words
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chat = [(history[i], history[i + 1]) for i in range(0, len(history) - 1, 2) ] # convert to tuples of list
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token_counter+=1
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yield chat, history, chat_counter, response # resembles {chatbot: chat, state: history}
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#Resetting to blank
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def reset_textbox():
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return gr.update(value='')
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#to set a component as visible=False
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def set_visible_false():
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return gr.update(visible=False)
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#to set a component as visible=True
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def set_visible_true():
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return gr.update(visible=True)
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title = """<h1 align="center">๐ Swarm Intelligence Agents ๐๐</h1>"""
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#display message for themes feature
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theme_addon_msg = """<center>๐ he swarm of agents combines a huge number of parallel agents divided into roles, including examiners, QA, evaluators, managers, analytics, and googlers.
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<br>๐The agents use smart task decomposition and optimization processes to ensure accurate and efficient research on any topic.๐จ</center>
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"""
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#Using info to add additional information about System message in GPT4
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system_msg_info = """Swarm pre-configured for best practices using whitelists of top internet resources'"""
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#Modifying existing Gradio Theme
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theme = gr.themes.Soft(primary_hue="zinc", secondary_hue="green", neutral_hue="green",
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text_size=gr.themes.sizes.text_lg)
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with gr.Blocks(css = """#col_container { margin-left: auto; margin-right: auto;} #chatbot {height: 520px; overflow: auto;}""",
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theme=theme) as demo:
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gr.HTML(title)
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gr.HTML("""<h3 align="center">๐ฅUsing a swarm of automated agents, we can perform fast and accurate research on any topic. ๐๐. ๐๐ฅณ๐You don't need to spent tons of hours during reseachy๐</h1>""")
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gr.HTML(theme_addon_msg)
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gr.HTML('''<center><a href="https://huggingface.co/spaces/swarm-agents/swarm-agents?duplicate=true"><img src="https://bit.ly/3gLdBN6" alt="Duplicate Space"></a>Duplicate the Space and run securely with your OpenAI API Key</center>''')
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with gr.Column(elem_id = "col_container"):
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#GPT4 API Key is provided by Huggingface
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with gr.Accordion(label="System message:", open=False):
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system_msg = gr.Textbox(label="Instruct the AI Assistant to set its beaviour", info = system_msg_info, value="")
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accordion_msg = gr.HTML(value="๐ง To set System message you will have to refresh the app", visible=False)
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chatbot = gr.Chatbot(label='Swarm Intelligence Search', elem_id="chatbot")
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inputs = gr.Textbox(placeholder= "Enter your search query here...", label= "Type an input and press Enter")
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state = gr.State([])
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with gr.Row():
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with gr.Column(scale=7):
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b1 = gr.Button().style(full_width=True)
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with gr.Column(scale=3):
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server_status_code = gr.Textbox(label="Status code from OpenAI server", )
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#top_p, temperature
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with gr.Accordion("Parameters", open=False):
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top_p = gr.Slider( minimum=-0, maximum=1.0, value=1.0, step=0.05, interactive=True, label="Top-p (nucleus sampling)",)
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temperature = gr.Slider( minimum=-0, maximum=5.0, value=1.0, step=0.1, interactive=True, label="Temperature",)
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chat_counter = gr.Number(value=0, visible=False, precision=0)
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#Event handling
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inputs.submit( predict, [system_msg, inputs, top_p, temperature, chat_counter, chatbot, state], [chatbot, state, chat_counter, server_status_code],) #openai_api_key
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b1.click( predict, [system_msg, inputs, top_p, temperature, chat_counter, chatbot, state], [chatbot, state, chat_counter, server_status_code],) #openai_api_key
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inputs.submit(set_visible_false, [], [system_msg])
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b1.click(set_visible_false, [], [system_msg])
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inputs.submit(set_visible_true, [], [accordion_msg])
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b1.click(set_visible_true, [], [accordion_msg])
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b1.click(reset_textbox, [], [inputs])
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inputs.submit(reset_textbox, [], [inputs])
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demo.queue(max_size=99, concurrency_count=20).launch(debug=True)
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