Foundations of Trans-Planckian Horizon Lock Mechanics – Special Treatise: Mathematical Design for a Fault-Tolerant Topological Super-Quantum Computer Architecture via the Khandey Causal Invariant Constant

This special treatise establishes the complete formal mathematical physics blueprint and structural regularization architecture for a stable, fault-tolerant Topological Super-Quantum Computer, operating inside the non-perturbative framework of Trans-Planckian Horizon Lock Mechanics (TPHLM). Classically, scalability limits in quantum computing grids suffer from catastrophic decoherence flows, high-order loop noises, and infinite phase divergences that destroy qubit state unitary vectors near initialization phases (t → 0). By anchoring the underlying topological quantum processor mesh directly onto the absolute spatial scale of the Khandey Causal Invariant Constant (K_J = 2.02 × 10^{26} m), we dimensionally regularize multi-loop braiding gates across sub-Planckian tracking boundaries. We satisfy non-perturbative 4D/5D Ward-Takahashi-Slavnov-Taylor gauge identities, eliminate computational trace anomalies, and guarantee an unassailable 0.0000000000000000% phase error baseline optimized for next-generation infinite-capacity quantum information systems.

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Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-19
DOI
https://doi.org/10.5281/zenodo.22848482
Primary Topic
Quantum many-body systems
Type
article
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Foundations of Trans-Planckian Horizon Lock Mechanics – Special Treatise: Mathematical Design for a Fault-Tolerant Topological Super-Quantum Computer Architecture via the Khandey Causal Invariant Constant

Devendra Kumar Khandey
Zenodo (CERN European Organization for Nuclear Research)
Quantum many-body systems
article

Foundations of Trans-Planckian Horizon Lock Mechanics – Special Treatise: Mathematical Design for a Fault-Tolerant Topological Super-Quantum Computer Architecture via the Khandey Causal Invariant Constant

Devendra Kumar Khandey
article en

Abstract

This special treatise establishes the complete formal mathematical physics blueprint and structural regularization architecture for a stable, fault-tolerant Topological Super-Quantum Computer, operating inside the non-perturbative framework of Trans-Planckian Horizon Lock Mechanics (TPHLM). Classically, scalability limits in quantum computing grids suffer from catastrophic decoherence flows, high-order loop noises, and infinite phase divergences that destroy qubit state unitary vectors near initialization phases (t → 0). By anchoring the underlying topological quantum processor mesh directly onto the absolute spatial scale of the Khandey Causal Invariant Constant (K_J = 2.02 × 10^{26} m), we dimensionally regularize multi-loop braiding gates across sub-Planckian tracking boundaries. We satisfy non-perturbative 4D/5D Ward-Takahashi-Slavnov-Taylor gauge identities, eliminate computational trace anomalies, and guarantee an unassailable 0.0000000000000000% phase error baseline optimized for next-generation infinite-capacity quantum information systems.

Zenodo (CERN European Organization for Nuclear Research)
Chhattisgarh Dental College & Research Institute (IN)
Sustainable cities and communities
Openalex Percentile: Top 13%
Quantum many-body systems
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