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# gemini-functions-agent | |
This template creates an agent that uses Google Gemini function calling to communicate its decisions on what actions to take. | |
This example creates an agent that can optionally look up information on the internet using Tavily's search engine. | |
[See an example LangSmith trace here](https://smith.langchain.com/public/0ebf1bd6-b048-4019-b4de-25efe8d3d18c/r) | |
## Environment Setup | |
The following environment variables need to be set: | |
Set the `TAVILY_API_KEY` environment variable to access Tavily | |
Set the `GOOGLE_API_KEY` environment variable to access the Google Gemini APIs. | |
## Usage | |
To use this package, you should first have the LangChain CLI installed: | |
```shell | |
pip install -U langchain-cli | |
``` | |
To create a new LangChain project and install this as the only package, you can do: | |
```shell | |
langchain app new my-app --package gemini-functions-agent | |
``` | |
If you want to add this to an existing project, you can just run: | |
```shell | |
langchain app add gemini-functions-agent | |
``` | |
And add the following code to your `server.py` file: | |
```python | |
from gemini_functions_agent import agent_executor as gemini_functions_agent_chain | |
add_routes(app, gemini_functions_agent_chain, path="/openai-functions-agent") | |
``` | |
(Optional) Let's now configure LangSmith. | |
LangSmith will help us trace, monitor and debug LangChain applications. | |
You can sign up for LangSmith [here](https://smith.langchain.com/). | |
If you don't have access, you can skip this section | |
```shell | |
export LANGCHAIN_TRACING_V2=true | |
export LANGCHAIN_API_KEY=<your-api-key> | |
export LANGCHAIN_PROJECT=<your-project> # if not specified, defaults to "default" | |
``` | |
If you are inside this directory, then you can spin up a LangServe instance directly by: | |
```shell | |
langchain serve | |
``` | |
This will start the FastAPI app with a server is running locally at | |
[http://localhost:8000](http://localhost:8000) | |
We can see all templates at [http://127.0.0.1:8000/docs](http://127.0.0.1:8000/docs) | |
We can access the playground at [http://127.0.0.1:8000/gemini-functions-agent/playground](http://127.0.0.1:8000/gemini-functions-agent/playground) | |
We can access the template from code with: | |
```python | |
from langserve.client import RemoteRunnable | |
runnable = RemoteRunnable("http://localhost:8000/gemini-functions-agent") | |
``` |