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Create chatbots and AI agent work flows. Intellinode python module connect your data with multiple AI models like OpenAI, Gemini, Anthropic, Stable Diffusion, or Mistral through a unified access layer.
pip install intelli
For detailed instructions, refer to intelli documentation.
Switch between multiple chatbot providers without changing your code.
from intelli.function.chatbot import Chatbot
from intelli.model.input.chatbot_input import ChatModelInput
def call_chatbot(provider, model=None):
# prepare common input
input = ChatModelInput("You are a helpful assistant.", model)
input.add_user_message("What is the capital of France?")
# creating chatbot instance
openai_bot = Chatbot(YOUR_API_KEY, provider)
response = openai_bot.chat(input)
return response
# call openai
call_chatbot("openai", "gpt-4")
# call mistralai
call_chatbot("mistral", "mistral-medium")
# call claude3
call_chatbot(ChatProvider.ANTHROPIC, "claude-3-sonnet-20240229")
# call google gemini
call_chatbot("gemini")
Chat with your docs using multiple LLMs. To connect your data, visit the IntelliNode App, start a project using the Document option, upload your documents or images, and copy the generated One Key. This key will be used to connect the chatbot to your uploaded data.
# creating chatbot with the intellinode one key
bot = Chatbot(YOUR_OPENAI_API_KEY, "openai", {"one_key": YOUR_ONE_KEY})
input = ChatModelInput("You are a helpful assistant.", "gpt-3.5-turbo")
input.add_user_message("What is the procedure for requesting a refund according to the user manual?")
response = bot.chat(input)
Use the image controller to generate arts from multiple models with minimum code change:
from intelli.controller.remote_image_model import RemoteImageModel
from intelli.model.input.image_input import ImageModelInput
# model details - change only two words to switch
provider = "openai"
model_name = "dall-e-3"
# prepare the input details
prompts = "cartoonishly-styled solitary snake logo, looping elegantly to form both the body of the python and an abstract play on data nodes."
image_input = ImageModelInput(prompt=prompt, width=1024, height=1024, model=model_name)
# call the model openai/stability
wrapper = RemoteImageModel(your_api_key, provider)
results = wrapper.generate_images(image_input)
You can create a flow of tasks executed by different AI models. Here's an example of creating a blog post flow:
from intelli.flow.agents.agent import Agent
from intelli.flow.tasks.task import Task
from intelli.flow.sequence_flow import SequenceFlow
from intelli.flow.input.task_input import TextTaskInput
from intelli.flow.processors.basic_processor import TextProcessor
# define agents
blog_agent = Agent(agent_type='text', provider='openai', mission='write blog posts', model_params={'key': YOUR_OPENAI_API_KEY, 'model': 'gpt-4'})
copy_agent = Agent(agent_type='text', provider='gemini', mission='generate description', model_params={'key': YOUR_GEMINI_API_KEY, 'model': 'gemini'})
artist_agent = Agent(agent_type='image', provider='stability', mission='generate image', model_params={'key': YOUR_STABILITY_API_KEY})
# define tasks
task1 = Task(TextTaskInput('blog post about electric cars'), blog_agent, log=True)
task2 = Task(TextTaskInput('Generate short image description for image model'), copy_agent, pre_process=TextProcessor.text_head, log=True)
task3 = Task(TextTaskInput('Generate cartoon style image'), artist_agent, log=True)
# start sequence flow
flow = SequenceFlow([task1, task2, task3], log=True)
final_result = flow.start()
To build async AI flows with multiple paths, refer to the flow tutorial.
FAQs
Create your chatbot or AI agent using Intellinode. We make any model smarter.
We found that intelli demonstrated a healthy version release cadence and project activity because the last version was released less than a year ago. It has 1 open source maintainer collaborating on the project.
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