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This Slack chatbot app template offers a customizable solution for integrating AI-powered conversations into your Slack workspace. Here's what the app can do out of the box:
Inspired by ChatGPT-in-Slack
Before getting started, make sure you have a development workspace where you have permissions to install apps. If you don’t have one setup, go ahead and create one.
Before you can run the app, you'll need to store some environment variables.
Next, set the gathered tokens as environment variables using the following commands:
# MacOS/Linux
export SLACK_BOT_TOKEN=<your-bot-token>
export SLACK_APP_TOKEN=<your-app-token># Windows
set SLACK_BOT_TOKEN=<your-bot-token>
set SLACK_APP_TOKEN=<your-app-token>Different models from different AI providers are available if the corresponding environment variable is added, as shown in the sections below.
To interact with Anthropic models, navigate to your Anthropic account dashboard to create an API key, then export the key as follows:
export ANTHROPIC_API_KEY=<your-api-key>To use Google Cloud Vertex AI, follow this quick start to create a project for sending requests to the Gemini API, then gather Application Default Credentials with the strategy to match your development environment.
Once your project and credentials are configured, export environment variables to select from Gemini models:
export VERTEX_AI_PROJECT_ID=<your-project-id>
export VERTEX_AI_LOCATION=<location-to-deploy-model>The project location can be located under the Region on the Vertex AI dashboard, as well as more details about available Gemini models.
Unlock the OpenAI models from your OpenAI account dashboard by clicking create a new secret key, then export the key like so:
export OPENAI_API_KEY=<your-api-key># Clone this project onto your machine
git clone https://github.com/slack-samples/bolt-python-ai-chatbot.git
# Change into this project directory
cd bolt-python-ai-chatbot
# Setup your python virtual environment
python3 -m venv .venv
source .venv/bin/activate
# Install the dependencies
pip install -r requirements.txt
# Start your local server
python3 app.py# Run ruff check from root directory for linting
ruff check .
# Run ruff format from root directory for code formatting
ruff format .manifest.json is a configuration for Slack apps. With a manifest, you can create an app with a pre-defined configuration, or adjust the configuration of an existing app.
app.py is the entry point for the application and is the file you'll run to start the server. This project aims to keep this file as thin as possible, primarily using it as a way to route inbound requests.
Every incoming request is routed to a "listener". Inside this directory, we group each listener based on the Slack Platform feature used, so /listeners/commands handles incoming Slash Commands requests, /listeners/events handles Events and so on.
This module contains classes for communicating with different API providers, such as Anthropic, OpenAI, and Vertex AI. To add your own LLM, create a new class for it using the base_api.py as an example, then update ai/providers/__init__.py to include and utilize your new class for API communication.
user_identity.py: This file defines the UserIdentity class for creating user objects. Each object represents a user with the user_id, provider, and model attributes.
user_state_store.py: This file defines the base class for FileStateStore.
file_state_store.py: This file defines the FileStateStore class which handles the logic for creating and managing files for each user.
set_user_state.py: This file creates a user object and uses a FileStateStore to save the user's selected provider to a JSON file.
get_user_state.py: This file retrieves a users selected provider from the JSON file created with set_user_state.py.
Only implement OAuth if you plan to distribute your application across multiple workspaces. A separate app_oauth.py file can be found with relevant OAuth settings.
When using OAuth, Slack requires a public URL where it can send requests. In this template app, we've used ngrok. Checkout this guide for setting it up.
Start ngrok to access the app on an external network and create a redirect URL for OAuth.
ngrok http 3000
This output should include a forwarding address for http and https (we'll use https). It should look something like the following:
Forwarding https://3cb89939.ngrok.io -> http://localhost:3000
Navigate to OAuth & Permissions in your app configuration and click Add a Redirect URL. The redirect URL should be set to your ngrok forwarding address with the slack/oauth_redirect path appended. For example:
https://3cb89939.ngrok.io/slack/oauth_redirect
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