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The "Code of Reality" Protocol: A Transceiver-Theoretic Hypothesis

Kai Huang

Zenodo (CERN European Organization for Nuclear Research) September 6, 2026 DOI: 10.5281/zenodo.22468975 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Theoretical or philosophical paper Peer reviewed
Key points Proposes that DMT re-tunes the brain's sampling period to enable phase-locked demodulation of a projected phase field, yielding glyphs as geometric invariants; offers six testable predictions, including gamma frequency correlation and wavelength-invariant glyph topology.

Abstract

The Goler Protocol (DMT + laser speckle) produces structured "code"—but what is its physical basis? This hypothesis paper proposes: DMT re-tunes the brain's sampling period (τ0), enabling phase-locked demodulation of a projected phase field from a virtual space with curvature K=1/4. The perceived glyphs are hypothesized to be renderings of geometric invariants—explaining why they are finite, recurring, and independent of laser color (while shorter wavelengths reveal finer detail). The framework also explains why VR playback fails (phase vs. intensity encoding) and offers a quantitative account of individual differences (a "lock window" for τ0). Six testable predictions to distinguish this hypothesis from alternatives: Baseline gamma frequency correlates with glyph resolution. tACS at gamma frequencies should induce glyphs without DMT. Glyph topology is wavelength-invariant (red/green/blue). A critical speckle grain size threshold exists below which glyphs disappear. Phase-sensitive recording (holographic) should partially restore the code, unlike standard video. Individual differences follow the "lock window" – only subjects whose DMT-induced τ0τ0 shift falls within a specific range will perceive the code. Purpose: To provide a falsifiable framework that bridges optical physics, neuropharmacology, and the philosophy of perception. Open for experimental collaboration.