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🌌 ONGRID

Ontology-Native Graph · Retrieval · Inference · Decision

A living knowledge grid that structures your documents, retrieves facts, reasons an answer — and verifies whether that answer is true, in zero tokens.

문서를 3D 온톨로지 그래프로 구성하고, 질문하면 그래프 사실을 근거로 LLM이 답하며, 그 답을 ZTC가 0토큰으로 판정합니다.

🤗 Live Demo Website License

ZTC-Judge S1MB #1 Python FastAPI three.js PRs Welcome UI

ONGRID — 3D ontology graph of 355 concepts with grounded answer and zero-token ZTC verification


ONGRID in one line: an open ontology graph + GraphRAG engine that renders knowledge as a glowing 3D universe, answers from graph facts, and verifies every answer with a zero-token judge (ZTC).

Most GraphRAG tools retrieve and generate. ONGRID adds the missing step the whole industry is scared of: decision — telling you whether the answer is actually true.

🧠 The ONGRID pipeline

Stage What happens Tech
O·N·G Ontology-Native Graph Documents → typed entities + relations → one 3D graph three.js · 3d-force-graph
R Retrieval Pull the facts relevant to your question GraphRAG
I Inference An LLM answers only from those facts LLM API
D Decision ZTC-Judge scores if the answer is trustworthy — 0 generated tokens FINAL-Bench ZTC-Judge

🪐 Structure → 🔎 Retrieve → 🧠 Reason → 🛡️ Decide

Roadmap: a self-evolving grid — it grows and refines itself as you feed it (RSI).

🚀 Live demo

👉 Open ONGRID on Hugging Face

The default universe is built from 227 real press articles (models, benchmarks, media, topics). Click an example query and watch the graph focus, the grounded answer, and the ZTC verdict badge appear.

📸 Screenshots

Ask & get a grounded answer, verified by ZTC The whole knowledge universe
ONGRID query with ZTC verification ONGRID 3D graph

Ask "Which model tops S1MB?" → the graph focuses, the LLM answers only from retrieved facts, and the answer is verified in zero tokens.

🧩 Features

  • 🌐 Trilingual — 한국어 · English · 中文, auto-detected, one-click switch.
  • 🪐 3D ontology graph — typed nodes, curved glowing edges, clustering, search, click-to-focus.
  • 🧠 Grounded answers — the LLM answers only from retrieved graph facts, with evidence shown.
  • 🛡️ Zero-token verification — every answer judged by ZTC-Judge in one forward pass.
  • 📁 Bring your own docs — upload .md / .txt / .json / .csv; parsed in your browser, nothing uploaded.
  • 🧱 Open & on-prem — Apache-2.0, runs anywhere Docker runs.

⚡ Run it

git clone https://github.com/openaiteams/ongrid.git
cd ongrid
export ANTHROPIC_API_KEY=sk-ant-...   # never commit keys
docker build -t ongrid . && docker run -p 7860:7860 -e ANTHROPIC_API_KEY=$ANTHROPIC_API_KEY ongrid
# open http://localhost:7860
Env var Default Meaning
ANTHROPIC_API_KEY — LLM key for grounded answers
ZTC_REPO FINAL-Bench/ZTC-Judge-4B ZTC-Judge model (-9B/-27B on GPU)
KNOU_MODEL claude-haiku-4-5-20251001 answer model id

❓ FAQ

What is an ontology graph? Knowledge represented as typed entities and typed relations — concepts and exactly how they connect. ONGRID builds one automatically from documents and renders it in 3D.
What is zero-token verification (ZTC)? ZTC judges whether an answer is trustworthy in a single forward pass, generating no tokens. ONGRID grades every answer so you see a trust verdict, not just text.
How is ONGRID different from other GraphRAG tools? It adds a decision layer: after retrieve-and-answer, ZTC-Judge verifies the answer. It is also fully 3D, trilingual, and runs your docs in the browser.

🔗 Links

📫 Connect

🤝 Contributing

Issues and PRs welcome — new extractors, languages, visual themes, ZTC integrations.

📜 License

Apache-2.0 · Built by VIDRAFT · Beyond AI, Toward AGI.

ontology graph · knowledge graph · GraphRAG · zero-token verification · ZTC · LLM answer verification · hallucination detection · 3D knowledge visualization · 지식그래프 · 온톨로지 · 本体图谱

About

ONGRID — Ontology-Native Graph · Retrieval · Inference · Decision. 3D knowledge graph + zero-token ZTC answer verification. by VIDRAFT.

Topics

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Stars

30 stars

Watchers

9 watching

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