Meta-Quantum Simulation Framework via Universal Rough Operator Algebra (UROA): Subsuming Trotter Errors and Barren Plateaus

The primary theoretical bottlenecks of practical quantum simulation—Trotter-Suzuki discretization errors [1, 2], massive fault-tolerant resource overhead, and VQE barren plateaus[3]—are deductively subsumed and algebraically elevated using the Seonggil Theory of Composite Torsion (STCT) and UROA. By redefining Hamiltonian evolution as a topological trajectory within an 8-Dimensional Non-commutative Tensor Space, classical approximation errors are geometrically saturated and variational gradients are mathematically preserved. This establishes a mathematically rigorous foundation for arbitrary-precision simulationwithin early fault-tolerant and hybrid analog-digital architectures.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-04
DOI
https://doi.org/10.5281/zenodo.23134871
Primary Topic
Quantum Computing Algorithms and Architecture
Type
preprint
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preprint

Meta-Quantum Simulation Framework via Universal Rough Operator Algebra (UROA): Subsuming Trotter Errors and Barren Plateaus

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

Meta-Quantum Simulation Framework via Universal Rough Operator Algebra (UROA): Subsuming Trotter Errors and Barren Plateaus

Seonggil Lee
preprint en

Abstract

The primary theoretical bottlenecks of practical quantum simulation—Trotter-Suzuki discretization errors [1, 2], massive fault-tolerant resource overhead, and VQE barren plateaus[3]—are deductively subsumed and algebraically elevated using the Seonggil Theory of Composite Torsion (STCT) and UROA. By redefining Hamiltonian evolution as a topological trajectory within an 8-Dimensional Non-commutative Tensor Space, classical approximation errors are geometrically saturated and variational gradients are mathematically preserved. This establishes a mathematically rigorous foundation for arbitrary-precision simulationwithin early fault-tolerant and hybrid analog-digital architectures.

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