VectorCode

by DavidyzVerified

A code repository indexing tool to supercharge your LLM experience.

872
Stars
49
Forks
Python
Language
8/23/2026
Added
View on GitHubDownload ZIP

⚠️ Third-Party Software Notice

This skill is third-party open-source software developed and hosted independently on GitHub. SkillTip is an informational directory and does not control or maintain the underlying repository. Any security checks displayed are automated and limited in scope. Review the source code before installing.

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Installation

Add to your Claude Code skills directory:

# Add to your Claude Code skills
git clone https://github.com/Davidyz/VectorCode

Getting Started

Guides for using skills like VectorCode.

Security Report

Verified

Last scanned: —

{
  "status": "PASSED",
  "issues": []
}

README.md

VectorCode

codecov Test and Coverage pypi

VectorCode is a code repository indexing tool. It helps you build better prompt for your coding LLMs by indexing and providing information about the code repository you're working on. This repository also contains the corresponding neovim plugin that provides a set of APIs for you to build or enhance AI plugins, and integrations for some of the popular plugins.

[!NOTE] This project is in beta quality and is undergoing rapid iterations. I know there are plenty of rooms for improvements, and any help is welcomed.

Why VectorCode?

LLMs usually have very limited understanding about close-source projects, projects that are not well-known, and cutting edge developments that have not made it into releases. Their capabilities on these projects are quite limited. With VectorCode, you can easily (and programmatically) inject task-relevant context from the project into the prompt. This significantly improves the quality of the model output and reduce hallucination.

asciicast

Documentation

[!NOTE] The documentation on the main branch reflects the code on the latest commit. To check for the documentation for the version you're using, you can check out the corresponding tags.

  • For the setup and usage of the command-line tool, see the CLI documentation;
  • For neovim users, after you've gone through the CLI documentation, please refer to the neovim plugin documentation (and optionally the lua API reference) for further instructions.
  • Additional resources:
    • the wiki for extra tricks and tips that will help you get the most out of VectorCode;
    • the discussions where you can ask general questions and share your cool usages about VectorCode.
    • If you're feeling adanvturous, feel free to check out the pull requests for WIP features.

If you're trying to contribute to this project, take a look at the contribution guide, which contains information about some basic guidelines that you should follow and tips that you may find helpful.

About Versioning

This project follows an adapted semantic versioning:

  • Until 1.0.0 is released, the major version number stays 0 which indicates that this project is still in early stage, and features/interfaces may change from time to time;
  • The minor version number indicates breaking changes. When I decide to remove a feature/config option, the actual removal will happen when I bump the minor version number. Therefore, if you want to avoid breaking a working setup, you may choose to use a version constraint like "vectorcode<0.7.0";
  • The patch version number indicates non-breaking changes. This can include new features and bug fixes. When I decide to deprecate things, I will make a new release with bumped patch version. Until the minor version number is bumped, the deprecated feature will still work but you'll see a warning. It's recommended to update your setup to adapt the new features.

TODOs

  • query by file path excluded paths;
  • chunking support;
    • add metadata for files;
    • chunk-size configuration;
    • smarter chunking (semantics/syntax based), implemented with py-tree-sitter and tree-sitter-language-pack;
    • configurable document selection from query results.
  • NeoVim Lua API with cache to skip the retrieval when a project has not been indexed Returns empty array instead;
  • job pool for async caching;
  • persistent-client;
  • proper remote Chromadb support (with authentication, etc.);
  • respect .gitignore;
  • implement some sort of project-root anchors (such as .git or a custom .vectorcode.json) that enhances automatic project-root detection. Implemented project-level .vectorcode/ and .git as root anchor
  • ability to view and delete files in a collection;
  • joint search (kinda, using codecompanion.nvim/MCP);
  • Nix support (unofficial packages here);
  • Query rewriting (#124).

Credit

Special Thanks

JetBrains logo.

Star History

Star History Chart

Frequently Asked Questions

What is VectorCode?

VectorCode is an open-source mcp servers skill for AI coding assistants such as Claude Code, Codex CLI, and ChatGPT, built by Davidyz. A code repository indexing tool to supercharge your LLM experience. It has 872 GitHub stars.

Is VectorCode safe to use?

Yes. VectorCode passed SkillsLLM's automated security scan — a dependency vulnerability audit plus prompt-injection heuristics — with no high-severity issues. You can read the full report in the Security Report section on this page.

How do I install VectorCode?

Clone the repository with "git clone https://github.com/Davidyz/VectorCode" and add it to your Claude Code skills directory (see the Installation section above).

What programming language is VectorCode written in?

VectorCode is primarily written in Python. It is open-source under Davidyz on GitHub, so you can review or fork the full source.

Are there alternatives to VectorCode?

Yes. SkillsLLM lists many other MCP Servers skills you can browse and compare side by side. Open the MCP Servers category from the badge at the top of this page, or use the Related Skills and comparison links further down to weigh VectorCode against similar tools.

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