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Il Principio di Risonanza di Olografia Bidimensionale: Geometria Pura, Fisica dei Buchi Neri e Limiti dei Computer Quantistici

Sep 2026 · Zenodo (CERN European Organization for Nuclear Research)

Abstract

Esiste un punto d'incontro perfetto in cui la successione di Fibonacci annulla l'attrito dei decimali, trasformando l'area bidimensionale del passato nel rapporto lineare del futuro (Shift-2). Questo saggio dimostra matematicamente il Principio Olografico e isola sperimentalmente il "punto di rottura" fisico dello standard IEEE 754 alla 20ª iterazione massiva: il confine esatto dove la pura geometria computazionale si scontra con i limiti fisici dei moderni processori al silicio. ABSTRACT (ITALIANO) Questo studio presenta un'indagine formale geometrico-computazionale sull'invarianza di scala di strutture bidimensionali sottoposte a progressione geometrica esponenziale. Attraverso lo studio sistematico del rapporto dinamico tra l'Area di un rettangolo e la Somma dei suoi lati contigui (R = Area/Somma), l'algoritmo sviluppato identifica un punto latente di risonanza armonica attivato esclusivamente dalle sequenze di Fibonacci. I risultati estendono i propri confini applicativi a tre domini fondamentali: 1. **Fisica dei Buchi Neri:** La relazione Shift-2 (Area_n = Rapporto_n+2) quantifica matematicamente lo sfasamento olografico, offrendo un modello puro per descrivere come l'entropia e l'informazione interna di un volume quantistico possano essere archiviate interamente sul proprio orizzonte degli eventi perimetrale. 2. **Computazione Quantistica e Chip 3D:** L'eliminazione totale del rumore decimale in presenza di crescita esponenziale offre un paradigma matematico esente da errori di arrotondamento floating-point, ottimizzando la conduttività termica nei microchip microscopici tridimensionali. 3. **Limiti Hardware Silicio:** L'opera documenta i limiti fisici delle CPU riscontrati alla ventesima iterazione massiva, isolando una deviazione decimale microscopica (.0156) derivante dall'esaurimento dei registri di memoria dello standard IEEE 754. --- ### ABSTRACT (ENGLISH) This paper presents a formal computational and geometric investigation into the scale invariance of 2D structures under geometric progression. By analyzing the dynamic ratio between a rectangle's area and the sum of its contiguous sides (R = Area/Sum) via an iterative simulation loop, we identify a latent harmonic resonance point triggered exclusively by Fibonacci sequences. The mathematical framework offers critical insights into three cutting-edge domains: 1. **Black Hole Physics:** The Shift-2 relation provides a pure algebraic model for the Holographic Principle, describing how the internal entropy of a quantum volume maps directly to its boundary event horizon. 2. **Quantum Computing Architectures:** The absolute collapse of micro-decimal noise allows for the design of fault-tolerant geometric microchips, optimizing thermal dissipation without floating-point registry overhead. 3. **Silicon Hardware Boundaries:** We document the exact binary breaking point at the 20th massive iteration, isolating a predictable micro-decimal error (.0156) stemming from IEEE 754 floating-point standard limits in modern CPUs.

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