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Vasilije 34c6652939
add configurable JWT expiration, cookie domain, CORS origins, and service restart policies (#1956)
<!-- .github/pull_request_template.md -->

## Description
This PR introduces several configuration improvements to enhance the
application's flexibility and reliability. The changes make JWT token
expiration and cookie domain configurable via environment variables,
improve CORS configuration, and add container restart policies for
better uptime.

**JWT Token Expiration Configuration:**
- Added `JWT_LIFETIME_SECONDS` environment variable to configure JWT
token expiration time
- Set default expiration to 3600 seconds (1 hour) for both API and
client authentication backends
- Removed hardcoded expiration values in favor of environment-based
configuration
- Added documentation comments explaining the JWT strategy configuration

**Cookie Domain Configuration:**
- Added `AUTH_TOKEN_COOKIE_DOMAIN` environment variable to configure
cookie domain
- When not set or empty, cookie domain defaults to `None` allowing
cross-domain usage
- Added documentation explaining cookie expiration is handled by JWT
strategy
- Updated default_transport to use environment-based cookie domain

**CORS Configuration Enhancement:**
- Added `CORS_ALLOWED_ORIGINS` environment variable with default value
of `'*'`
- Configured frontend to use `NEXT_PUBLIC_BACKEND_API_URL` environment
variable
- Set default backend API URL to `http://localhost:8000`

**Docker Service Reliability:**
- Added `restart: always` policy to all services (cognee, frontend,
neo4j, chromadb, and postgres)
- This ensures services automatically restart on failure or system
reboot
- Improves container reliability and uptime in production and
development environments

## Acceptance Criteria
<!--
* Key requirements to the new feature or modification;
* Proof that the changes work and meet the requirements;
* Include instructions on how to verify the changes. Describe how to
test it locally;
* Proof that it's sufficiently tested.
-->

## Type of Change
<!-- Please check the relevant option -->
- [x] Bug fix (non-breaking change that fixes an issue)
- [x] New feature (non-breaking change that adds functionality)
- [ ] Breaking change (fix or feature that would cause existing
functionality to change)
- [ ] Documentation update
- [ ] Code refactoring
- [ ] Performance improvement
- [ ] Other (please specify):

## Screenshots/Videos (if applicable)
<!-- Add screenshots or videos to help explain your changes -->

## Pre-submission Checklist
<!-- Please check all boxes that apply before submitting your PR -->
- [x] **I have tested my changes thoroughly before submitting this PR**
- [x] **This PR contains minimal changes necessary to address the
issue/feature**
- [ ] My code follows the project's coding standards and style
guidelines
- [ ] I have added tests that prove my fix is effective or that my
feature works
- [ ] I have added necessary documentation (if applicable)
- [ ] All new and existing tests pass
- [ ] I have searched existing PRs to ensure this change hasn't been
submitted already
- [ ] I have linked any relevant issues in the description
- [ ] My commits have clear and descriptive messages

## DCO Affirmation
I affirm that all code in every commit of this pull request conforms to
the terms of the Topoteretes Developer Certificate of Origin.


<!-- This is an auto-generated comment: release notes by coderabbit.ai
-->
## Summary by CodeRabbit

* **New Features**
* Services now automatically restart on failure for improved
reliability.

* **Configuration**
* Cookie domain for authentication is now configurable via environment
variable, defaulting to None if not set.
* JWT token lifetime is now configurable via environment variable, with
a 3600-second default.
* CORS allowed origins are now configurable with a default of all
origins (*).
* Frontend backend API URL is now configurable, defaulting to
http://localhost:8000.

<sub>✏️ Tip: You can customize this high-level summary in your review
settings.</sub>
<!-- end of auto-generated comment: release notes by coderabbit.ai -->
2026-01-04 10:37:13 +01:00
.github updates old no asserts test + yml 2025-12-19 10:32:45 +01:00
alembic feat: redo notebook tutorials (#1922) 2026-01-01 14:44:04 +01:00
assets chore: update cognee ui on readme 2025-09-11 11:05:18 +02:00
bin Revert "Clean up core cognee repo" 2025-05-15 10:46:01 +02:00
cognee add configurable JWT expiration, cookie domain, CORS origins, and service restart policies (#1956) 2026-01-04 10:37:13 +01:00
cognee-frontend fix: typos in text and error handling 2025-12-18 22:52:09 +01:00
cognee-mcp Merge branch 'dev' into add-custom-label-apenade 2025-12-16 19:15:30 +01:00
cognee-starter-kit refactor: restructure examples and starter kit into new-examples (#1862) 2025-12-20 02:07:28 +01:00
deployment Fix/add async lock to all vector databases (#1244) 2025-08-14 15:57:34 +02:00
distributed chore: deletes toml and lock files from distributed directory 2025-10-14 09:55:02 +02:00
evals Deprecate SearchType.INSIGHTS, replace all references to default search type - SearchType.GRAPH_COMPLETION 2025-10-08 12:13:59 +01:00
examples refactor: restructure examples and starter kit into new-examples (#1862) 2025-12-20 02:07:28 +01:00
licenses Revert "Clean up core cognee repo" 2025-05-15 10:46:01 +02:00
logs refactor: Return logs folder 2025-10-29 16:31:42 +01:00
new-examples refactor: restructure examples and starter kit into new-examples (#1862) 2025-12-20 02:07:28 +01:00
notebooks Removed check_permissions_on_dataset.py and related references 2025-11-13 08:31:15 -05:00
tools Revert "Clean up core cognee repo" 2025-05-15 10:46:01 +02:00
working_dir_error_replication feat: Redis lock integration and Kuzu agentic access fix (#1504) 2025-10-16 15:48:20 +02:00
.coderabbit.yaml coderabbit fix 2025-11-25 18:09:43 +01:00
.dockerignore Revert "Clean up core cognee repo" 2025-05-15 10:46:01 +02:00
.env.template feat(database): add connect_args support to SqlAlchemyAdapter (#1861) 2025-12-16 14:50:27 +01:00
.gitattributes Merge dev with main (#921) 2025-06-07 07:48:47 -07:00
.gitguardian.yml fix: Mcp improvements (#1114) 2025-07-24 21:52:16 +02:00
.gitignore feat: add welcome tutorial notebook for new users (#1425) 2025-09-18 18:07:05 +02:00
.mergify.yml ci(Mergify): configuration update 2025-11-21 17:59:15 +01:00
.pre-commit-config.yaml Feat: log pipeline status and pass it through pipeline [COG-1214] (#501) 2025-02-11 16:41:40 +01:00
.pylintrc fix: enable sqlalchemy adapter 2024-08-04 22:23:28 +02:00
AGENTS.md Add repository guidelines to AGENTS.md 2025-10-26 11:18:17 +01:00
alembic.ini fix: Logger suppresion and database logs (#1041) 2025-07-03 20:08:27 +02:00
CODE_OF_CONDUCT.md Update CODE_OF_CONDUCT.md 2024-12-13 11:30:16 +01:00
CONTRIBUTING.md add support for structured outputs with llamma cpp va instructor and litellm 2025-12-30 16:37:31 -08:00
CONTRIBUTORS.md Merge with main (#892) 2025-05-30 23:13:04 +02:00
DCO.md Create DCO.md 2024-12-13 11:28:44 +01:00
docker-compose.yml ``` 2026-01-04 11:08:42 +08:00
Dockerfile ``` 2026-01-04 15:22:21 +08:00
entrypoint.sh added logs 2025-10-25 10:26:46 +02:00
LICENSE Update LICENSE 2024-03-30 11:57:07 +01:00
mypy.ini fix: Remove weaviate (#1139) 2025-07-23 19:34:35 +02:00
NOTICE.md add NOTICE file, reference CoC in contribution guidelines, add licenses folder for external licenses 2024-12-06 13:27:55 +00:00
poetry.lock chore: regen poetry lock file 2025-12-05 19:51:26 +01:00
pyproject.toml feat: redo notebook tutorials (#1922) 2026-01-01 14:44:04 +01:00
README.md Update Python version range in README 2025-11-09 11:42:45 +01:00
SECURITY.md Merge main vol 2 (#967) 2025-06-11 09:28:41 -04:00
uv.lock update lock file 2025-12-30 16:59:59 -08:00

Cognee Logo

Cognee - Accurate and Persistent AI Memory

Demo . Docs . Learn More · Join Discord · Join r/AIMemory . Community Plugins & Add-ons

GitHub forks GitHub stars GitHub commits GitHub tag Downloads License Contributors Sponsor

cognee - Memory for AI Agents  in 5 lines of code | Product Hunt topoteretes%2Fcognee | Trendshift

Use your data to build personalized and dynamic memory for AI Agents. Cognee lets you replace RAG with scalable and modular ECL (Extract, Cognify, Load) pipelines.

🌐 Available Languages : Deutsch | Español | Français | 日本語 | 한국어 | Português | Русский | 中文

Why cognee?

About Cognee

Cognee is an open-source tool and platform that transforms your raw data into persistent and dynamic AI memory for Agents. It combines vector search with graph databases to make your documents both searchable by meaning and connected by relationships.

You can use Cognee in two ways:

  1. Self-host Cognee Open Source, which stores all data locally by default.
  2. Connect to Cognee Cloud, and get the same OSS stack on managed infrastructure for easier development and productionization.

Cognee Open Source (self-hosted):

  • Interconnects any type of data — including past conversations, files, images, and audio transcriptions
  • Replaces traditional RAG systems with a unified memory layer built on graphs and vectors
  • Reduces developer effort and infrastructure cost while improving quality and precision
  • Provides Pythonic data pipelines for ingestion from 30+ data sources
  • Offers high customizability through user-defined tasks, modular pipelines, and built-in search endpoints

Cognee Cloud (managed):

  • Hosted web UI dashboard
  • Automatic version updates
  • Resource usage analytics
  • GDPR compliant, enterprise-grade security

Basic Usage & Feature Guide

To learn more, check out this short, end-to-end Colab walkthrough of Cognee's core features.

Open In Colab

Quickstart

Lets try Cognee in just a few lines of code. For detailed setup and configuration, see the Cognee Docs.

Prerequisites

  • Python 3.10 to 3.13

Step 1: Install Cognee

You can install Cognee with pip, poetry, uv, or your preferred Python package manager.

uv pip install cognee

Step 2: Configure the LLM

import os
os.environ["LLM_API_KEY"] = "YOUR OPENAI_API_KEY"

Alternatively, create a .env file using our template.

To integrate other LLM providers, see our LLM Provider Documentation.

Step 3: Run the Pipeline

Cognee will take your documents, generate a knowledge graph from them and then query the graph based on combined relationships.

Now, run a minimal pipeline:

import cognee
import asyncio


async def main():
    # Add text to cognee
    await cognee.add("Cognee turns documents into AI memory.")

    # Generate the knowledge graph
    await cognee.cognify()

    # Add memory algorithms to the graph
    await cognee.memify()

    # Query the knowledge graph
    results = await cognee.search("What does Cognee do?")

    # Display the results
    for result in results:
        print(result)


if __name__ == '__main__':
    asyncio.run(main())

As you can see, the output is generated from the document we previously stored in Cognee:

  Cognee turns documents into AI memory.

Use the Cognee CLI

As an alternative, you can get started with these essential commands:

cognee-cli add "Cognee turns documents into AI memory."

cognee-cli cognify

cognee-cli search "What does Cognee do?"
cognee-cli delete --all

To open the local UI, run:

cognee-cli -ui

Demos & Examples

See Cognee in action:

Persistent Agent Memory

Cognee Memory for LangGraph Agents

Simple GraphRAG

Watch Demo

Cognee with Ollama

Watch Demo

Community & Support

Contributing

We welcome contributions from the community! Your input helps make Cognee better for everyone. See CONTRIBUTING.md to get started.

Code of Conduct

We're committed to fostering an inclusive and respectful community. Read our Code of Conduct for guidelines.

Research & Citation

We recently published a research paper on optimizing knowledge graphs for LLM reasoning:

@misc{markovic2025optimizinginterfaceknowledgegraphs,
      title={Optimizing the Interface Between Knowledge Graphs and LLMs for Complex Reasoning},
      author={Vasilije Markovic and Lazar Obradovic and Laszlo Hajdu and Jovan Pavlovic},
      year={2025},
      eprint={2505.24478},
      archivePrefix={arXiv},
      primaryClass={cs.AI},
      url={https://arxiv.org/abs/2505.24478},
}