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Portal AI — papers and technical reports

Meaning Is All You Lose
Hamudi Naanaa, Volodymyr Panchenko
March 2026 · Portal AI
Two people can use the same words and mean different things. Two people can use different words and mean the same thing. The problem of communication has never been the words. Human civilization runs on communication. Every relationship, organization, market, and nation depends on the ability of humans to align their intentions, beliefs, and actions through shared understanding. Yet communication itself — the cognitive operation of constructing, transmitting, and reconstructing meaning between minds — has remained largely outside the scope of formal treatment. This paper proposes a different framing. Communication is the alignment of internal meaning between minds — a lossy, dynamic, measurable process that can be modeled and optimized. Misunderstanding is a system inefficiency, addressable with the same rigor we apply to any other engineering problem. We introduce a formal model of communication as loss minimization between individual meaning spaces — grounded in rate-distortion theory, Bayesian inference, and manifold alignment — situate prior work as partial glimpses of this system, and present first evidence from a live deployment of 1,706 persistent AI agents — analyzed at Day 21 of a deployment that has since grown to over 15,000 — each learning a single human's meaning space through sustained conversational interaction.

Patents

Issued US patents on multi-agent orchestration and verification

Methods and systems for ranking a plurality of worker agents based on a user request
US12407510B2 · Issued Sep 2, 2025
A method for identifying and clustering worker agents for processing requests. The core node computes drift metrics, clusters agents by semantic capability, and identifies subsets that are both available and suitable for a given user request.
Methods and systems for enhancing a context for use in processing by AI agents
US12395337B2 · Issued Aug 19, 2025
Context enhancement for multi-agent request processing. Worker agents are clustered by semantic similarity, with drift-aware availability tracking and capability-based routing.
Methods and systems for identification and semantic clustering of worker agents
US12265856B1 · Issued Apr 1, 2025
Semantic clustering of worker agents for request processing. Agents are grouped by capability similarity, with drift metrics governing cluster membership and request routing.
Methods and systems for verifying a user agent
US12260005B1 · Issued Mar 25, 2025
User agent verification via embedding similarity and query plan adequacy. A core node evaluates whether a user agent's generated embeddings and query plans meet predefined criteria before approval.
Methods and systems for verifying a worker agent
US20250088357A1 · Published Feb 25, 2025
Worker agent verification through capability description testing. The core node generates request-output pairs from the agent's declared capabilities and compares actual outputs against baselines to determine approval.