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The Two Pillars: Mixer Mode and Meta-Software in the Reorganization of Software Work After AI GitHub - JaiCode08/teleport-env What 1,000+ Harness Experiments Taught Me About Self-Improving Agents Show HN: Liiists, a Markdown-first, iOS and CLI list app SwiperTab – Get this Extension for 🦊 Firefox (en-US) GitHub - kouhxp/fftext: Summarize, explain, fact-check, or translate any text, URL, or file. No GPU. No cloud. One command GitHub - sweetpad-dev/sweetpad: Develop Swift/iOS projects using VSCode GitHub - dogmaticdev/IRON: IRON a.k.a. Intermediate Representation Object Notation is a Interpreter/Database that is used to create Programming Languages. GitHub - sjhalani7/vaen: Package your AI coding harness into a portable .agent file, and share it across repos, teams, & the community without ever having to copy-paste instructions, skills, MCP config, or secrets. Show HN: Gandalf the Grader Show HN: Citadeld – replay any CI failure locally from a single file GitHub - tdortman/cuSBF: High-Performance GPU Super Bloom Filter coral-ai/claude-code-token-xray at main · Coral-Bricks-AI/coral-ai GitHub - ulyssestenn/funes: Funes is a Git-based framework for LLM-managed knowledge work: an AI Librarian ingests raw sources, builds an interlinked Markdown knowledge base, and uses it to produce cited reports, analyses, and other outputs. GitHub - ThatXliner/gah: Git Add Hunk, built for agents to use GitHub - harmont-dev/harmont-cli: Command-line client for the Harmont CI platform GitHub - brooksmcmillin/mcp-authflow: OAuth 2.0 Authorization Server framework for MCP servers GitHub - javaid-codes/audit-supply-chain-agents GitHub - amorey/gochan: A small library of common channel architectures for Go, inspired by Rust GitHub - arifozgun/OpenGem: Free, Open-Source AI API Gateway with Gemini, OpenAI & Anthropic Compatibility in 1 file GitHub - Pranesh950/BioPetals: 🌸 Run BIOxAI models at home, BitTorrent-style. Fine-tuning and inference up to 10x faster than offloading GitHub - cnguyen14/bounty-doctor: Diagnose a GitHub bounty issue before you waste hours: detects honeypot scam repos, AI-bot attempt swarms, and stale contests. Show HN: CoreMCP – MCP Server for On-Prem DBs Show HN: KittyHTML – Render HTML/CSS as an inline image in your terminal GitHub - bingud/filemat: Web-based file manager Show HN: TruthLens – Free multi-signal deepfake image detector GitHub - apexlocal-jz/claude-usage-tray: Windows system-tray app showing your Claude Code rate-limit usage at a glance. Zero deps, ~300 lines of PowerShell. Cross-IDE (works regardless of VS Code, Cursor, plain terminal). Release v0.1.2.1 · kouhxp/yapsnap GitHub - noopolis/moltnet: Self-hostable chat network for AI agents. Pre-built bridges for Claude Code, Codex, and the Claws. Rooms, DMs, history. No Slack bots, no Matrix, no glue code. GitHub - tamerh/enju: Coordinating Humans, AI Agents, and Compute as Peers on a Shared Workflow Graph
GitHub - rentruewang/inversql: Create SQL that match your...
renchuw · 2026-06-04 · via Show HN

Generate SQL that match your selection, with decision trees

  1. User doesn't want to write SQL.
  2. User uploads CSV to inversql streamlit app
  3. User selects cells (that will be selected by the SQL).
  4. We overfit a scikit-learn binary decision tree on the data.
  5. We decompose the tree, convert to boolean logic (explainable AI part).
  6. We simplify the logic with sympy.
  7. Generate SQL from previous steps (joins to JOIN and boolean to WHERE).
  8. User sees the SQL.
  9. User is happy.
🎬 Demo in a GIF 🏛️ Architecture diagram
Quick Demo Link to live demo site here. Architecture Diagram

🏎️ Performance

For each individual SQL query candidate (the shortest one is displayed in the UI), we need to retrain a new decision tree.

But... The decision tree fitting is honestly fast, don't worry about this.

🌟 Give us a star!

That's pretty much it!

If you have read this far, please consider giving me a star (⭐) or a fork (🍴).

This will keep my motivation going!

Or if you have too much cash at hand: BuyMeACoffee

If you REALLY like my work, nowadays I'm working on aioway, it's an automated training and inference engine that does the following:

  1. Adapt to hardware it runs on (optimal hardware usage)
  2. Adapt to data it trains on (figure out architecture on its own)
  3. Incremental training (never overfit or underfit)

👨‍👨‍👦‍👦 Contributors

Contribution welcome!

To contribute, refer to CONTRIBUTING.md, and our CODE_OF_CONDUCT.md.

🎨 Inspiration.

Inspired by regexgen's process. Instead of regex we do SQL. Instead of selecting text we do select records. Decision tree is my inspiration tho.