Theoretical framework demonstrates syntactic foundations for physics across quantum and cosmological scales, suggesting intrinsically fault-tolerant quantum computing and discrete cosmology.
Quantum information is not intrinsically fragile; we have been measuring it incorrectly. This monograph presents a radical re‑foundation of physics based on George Spencer‑Brown’s Laws of Form, strictly adhered to and extended into a Syntactic Token Calculus (STC). The framework generates elementary particles, their physical properties, and cosmological dynamics from two primitive gestures—the mark # and the enclosure [ ]—and two reduction rules (Calling, Crossing). It discards continuous mathematics and background spacetime, modeling reality as a computationally irreducible, ultrametric Bruhat‑Tits tree of distinctions. This synthesis unifies micro‑scale particle generation (mass, charge, and spin as projective cross‑ratios) with macro‑scale cosmology, explaining Haug & Tatum’s continuous geometric‑mean CMB temperature as the coarse‑grained shadow of a discrete, log‑periodic reality. The STC yields concrete, testable predictions, including log‑periodic oscillations in the CMB, passive geometric fault tolerance in non‑Archimedean quantum circuits, and ultrametric clustering in neural data. This work offers a path to intrinsically fault‑tolerant quantum computation and a unified, syntactic foundation for all of physics.
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Rowan Brad Quni-Gudzinas (2026) studied this question.
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