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June 22, 20260 citationsOpen Access

The Digital Fabric of Spacetime: Eradicating Black Hole Singularities via Dynamic Covariant Sampling and Decentralized Logs in the Relativistic Klein-Gordon Information Membrane (SDM-V Theory)

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伊伊吹仁

Key Points

  • This research aims to address the mathematical breakdown of gravitational singularities in black holes using a digital information membrane framework.
  • Introduced the Sampled Digital Membrane with Variable Information Loop (SDM-V) Theory.
  • Proved dynamic covariant sampling can co-exist with Lorentz invariance.
  • Developed a unified communication protocol for multidimensional spacetime.
  • Pixelated spacetime sampling was shown to maintain Lorentz invariance.
  • At Nyquist threshold, gravitational attraction is converted into a repulsive force (energy-momentum tensor phase inversion).
  • The theoretical framework supports cosmological bounce through the emergent spacetime model.

Abstract

Overview This paper introduces the Sampled Digital Membrane with Variable Information Loop (SDM-V) Theory, a novel, Lorentz-covariant quantum field theory framework designed to eradicate the mathematical breakdown of gravitational singularities at the center of black holes. Synthesizing core insights from the Holographic Principle, Loop Quantum Gravity (LQG), and the Generalized Uncertainty Principle (GUP), we redefine smooth spacetime as a multi-layered digital information membrane sampled at the Planck scale. Key Contributions Dynamic Covariant Sampling Specification: Proves that pixelated spacetime sampling can fully co-exist with Lorentz invariance by defining intervals relative to the observer's four-velocity vector. Energy-Momentum Phase Reversal: Demonstrates that when a physical matter wave reaches the Nyquist threshold (fN = 1/ (2P) ), an information-theoretic anti-aliasing phase inversion mathematically flips the sign of the energy-momentum tensor, converting gravitational attraction into a repulsive force that drives a cosmological bounce. Unified Holographic-LQG Architecture: Formulates a type-safe bidirectional communication protocol across dimensions, where the continuous bulk spacetime dynamically emerges from decoded discrete boundary data using sinc-interpolation kernels. Document Information Author: Hitoshi Ibuki (Lead Architect / Independent Researcher) Version: 1. 0. 0 (Foundational Paper) Keywords: Quantum Gravity, Loop Quantum Gravity, Holographic Principle, Shannon-Somerya Sampling Theorem, Sinc Interpolation, Black Hole Singularity Debugging, Cosmological Bounce For inquiries or collaborative research regarding the SDM-V framework, please refer to the corresponding contact details or open an issue via the associated research repository.

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Cite This Study

伊吹仁 (2026) studied this question.

synapsesocial.com/papers/6a38d152da1bad9caca30fa6https://doi.org/10.5281/zenodo.20769538
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  1. 1Spatiotemporal Distributed Membrane with Volatility (SDM-V) Theory v2.0: A Unified Dynamic Information Framework for Spacetime and Matter-Wave Interaction2026
  2. 2Spatiotemporal Distributed Membrane with Volatility (SDM-V) Theory v2.0.1: A Unified Dynamic Information Framework for Spacetime and Matter-Wave Interaction2026
  3. 3Cyclic Infodynamics: Informational Invariance, Non-Singular Quantum Gravity, and Unified Computational Field Mechanics2026
  4. 4Unified Resolution of Quantum Gravity and the Black Hole Information Paradox: The Helical Holographic Vacuum Geodesic Module within Helical Hidden Holographic Quantum Mechanics (H3QM)2026
  5. 5Annihilation of Black Hole Gravitational Singularities: Topological Vacuum Jamming Under the Strict Control of Wigner GOE Invariants2026