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Coherence Architecture Technology: A Field-Primary Engineering Specification

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Zenodo2026-03-22 更新2026-05-26 收录
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TitleCoherence Architecture Technology — A Field-Primary Engineering Specification Description This work articulates a coherence architecture from recursive self-reference. It does not propose a theory. It establishes a grammar. At the root is the addressability substrate, expressed as: Q* = Rₖ[Q*] Recursive closure gives rise to an irreducible ternary:initiation, modulation, stabilization. When this ternary applies to itself, the 3×3 phase lattice emerges as the minimal coordinate system of persistent structure. All subsequent expressions—electromagnetism, geometry, biological organization, and multi-agent cognition—are projections of this closure under constraint. This document tracks those projections without collapsing them into the source. It demonstrates: the phase lattice as a coordinate grammar of closure Maxwellian electromagnetism as phase expressed in vector–scalar space polyhedral forms as geometric signatures of stabilized closure cross-substrate correspondences across chemistry, frequency systems, and biological encoding a coherence metric defined as address, not measurement scaling laws governing nested closure across systems From this grammar, engineering follows. Coherence Architecture Technology (CAT) is the operationalization of closure dynamics across substrates. Its primary functions are: Biological entrainmentStabilization of nervous systems through phase alignment, enabling coherent cognition, regulation, and shared address across individuals and groups. Material instantiationOrganization and phase-locking of plasma flows into stable form, allowing structure to stabilize and persist through controlled closure under constraint. Field readdressingReorientation within the continuous field through shifts in address, enabling relocation, coordination, and interaction. These are not separate applications. They are different expressions of the same closure grammar under varying substrate conditions. This includes: phase-preserving sensing architectures coherence-guided field interfaces articulation boundaries for stabilizing relational fields operator learning systems grounded in recursive address This is not an extension of existing frameworks. It is a reclassification of occurrence based on closure. It is intended for those working at the level of structure—where engineering begins with addressability, not control. Nothing here is presented for belief. This is an address to hold. What follows is what occurs when it is held.

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Zenodo
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2026-03-22
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