Gofai

No Hallucinations. Verified, Not Generated.

Gofai's Large Metadata Model uses three coordinated agents, Neural, Symbolic, and Orchestration, to catch what generation alone can't. Nothing ships until it's been verified.

Most AI tools generate an answer and hope it's right. Gofai doesn't guess. A Neural Agent proposes, a Symbolic Agent verifies by logic, and an Orchestration Agent arbitrates between them, limiting every output to what's provably correct. If the two agents can't agree, the Orchestration Agent escalates to a subject matter expert instead of returning an unverified answer. The result: zero hallucinations, by architecture, not by promise.

Gofai three-agent orchestration architecture: Neural, Symbolic, and Orchestration agents working in tandem

Get the White Paper

Get the full breakdown of how Gofai's Neural, Symbolic, and Orchestration agents eliminate hallucinations, verified by logic, not by promise.

Read the full white paper on how Gofai's neuro-symbolic architecture manages data integrity without hallucinations.

What's Inside

How Gofai's three-agent architecture eliminates hallucinations at the source.

How the agents divide labor

How the agents divide labor

The Neural Agent proposes, the Symbolic Agent verifies by logic — two fundamentally different ways of checking work, working in tandem.

Why nothing unverified ships

Why nothing unverified ships

The Orchestration Agent arbitrates every disagreement and escalates to a subject matter expert rather than guessing.

A framework for evaluating any AI vendor

A framework for evaluating any AI vendor

A practical way to assess hallucination risk in AI tools you’re already considering.

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