Meta-Shor Framework via Universal Rough Operator Algebra (UROA): Subsuming Quantum Decoherence and Resonance Breaking

The practical theoretical limitations of Shor’s integer factorization algorithm [1] on NISQ and early-fault-tolerant quantum hardware—namely, exponential physical qubit overhead, depth-induced decoherence, and asymptotic resonance breaking—are deductively resolved by radically embedding the algorithm into the Universal Rough Operator Algebra (UROA).By redefining quantum error correction not merely as logical redundancy [2], but as an active 8-Dimensional Topological Fractal Brake on the decoherence cascade, we formally elevate the subordinate error loop. This mathematical framework rigorously guarantees macroscopic logical coherence even when underlying physical error rates approach critical theoretical thresholds.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-04
DOI
https://doi.org/10.5281/zenodo.23134366
Primary Topic
Quantum Computing Algorithms and Architecture
Type
preprint
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preprint

Meta-Shor Framework via Universal Rough Operator Algebra (UROA): Subsuming Quantum Decoherence and Resonance Breaking

Seonggil Lee
Zenodo (CERN European Organization for Nuclear Research)
Quantum Computing Algorithms and Architecture
preprint

Meta-Shor Framework via Universal Rough Operator Algebra (UROA): Subsuming Quantum Decoherence and Resonance Breaking

Seonggil Lee
preprint en

Abstract

The practical theoretical limitations of Shor’s integer factorization algorithm [1] on NISQ and early-fault-tolerant quantum hardware—namely, exponential physical qubit overhead, depth-induced decoherence, and asymptotic resonance breaking—are deductively resolved by radically embedding the algorithm into the Universal Rough Operator Algebra (UROA).By redefining quantum error correction not merely as logical redundancy [2], but as an active 8-Dimensional Topological Fractal Brake on the decoherence cascade, we formally elevate the subordinate error loop. This mathematical framework rigorously guarantees macroscopic logical coherence even when underlying physical error rates approach critical theoretical thresholds.

Zenodo (CERN European Organization for Nuclear Research)
Quantum Computing Algorithms and Architecture
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