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March 29, 20260 citationsOpen Access

Quantum-Computational Methods of the Ψ-Model: Algorithms, Derivations, Advantages, and Verification Protocols

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IKIVAN KHALAMENDYK

Key Points

  • To explore various quantum-computational algorithms derived from the Ψ-model with a focus on representation-first computation.
  • Developed twenty quantum-computational algorithms based on the Ψ-model.
  • Utilized representation-first computation to enhance optimization tasks.
  • Implemented χ-aware frame control for phase-drift compensation and ψ-preconditioning for operator rewriting.
  • Created topology-driven classification procedures and anomaly-based selectors for improved measurements.
  • Included full derivations for components as well as falsifiers and verification protocols.
  • Established a coherent representation-aware stack for quantum computation.
  • Demonstrated methods that streamline the complexity of quantum tasks into simpler representations.
  • Provided verification protocols ensuring reliability of the quantum-algorithmic approaches.

Abstract

Abstract This preprint presents a self-contained scientific account of twenty quantum-computational algorithms and algorithmic directions arising from the Ψ-model. The central organizing principle is representation-first computation: whenever a task contains deterministic, quasi-deterministic, or geometrically structured contributions, those contributions are extracted from brute-force optimization and transferred to the representation layer where they become simplest. The paper develops χ-aware frame control for deterministic phase-drift compensation, ψ-preconditioning as an exact operator rewrite, ψ-QLSA and ψ-QSP/QSVT as solver-level consequences of that rewrite, projector-native low-band methods, transport between equivalent low-band carriers through an intertwiner J, topology-driven classification procedures, anomaly- and holonomy-based selectors, and detector-aware measurement formalisms. Exact components are accompanied by full derivations; benchmark and synthetic components are paired with explicit falsifiers, anti-tautological metrics, and frozen verification protocols. The result is a coherent representation-aware stack for quantum computation rather than one isolated algorithm. This record contains both the English and Ukrainian PDF versions of the manuscript.

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Cite This Study

IVAN KHALAMENDYK (2026) studied this question.

synapsesocial.com/papers/69c8c35cde0f0f753b39e157https://doi.org/10.5281/zenodo.19267599
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