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May 30, 20260 citationsOpen Access

Nonlocal Vacuum Information Dynamics (NVID): An Effective Framework for Spacetime Memory and Network Interactions

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VYVahit YILDIZ

Key Points

  • The aim is to develop a phenomenological framework for understanding spacetime as an information-processing medium.
  • Introduced the Nonlocal Vacuum Information Dynamics (NVID) framework comprising nonlocal vacuum response and dynamical information currents.
  • Modeled spacetime as a coupled bulk–boundary system allowing for the interaction of geometric dynamics with memory layers.
  • Identified falsifiability criteria for testing the framework with next-generation gravitational-wave detectors.
  • Described information currents stabilize wormhole geometries and modify effective throat geometry.
  • Identified observable signatures such as echo trains and memory echoes linked to the spacetime dynamics.
  • Proposed a testable framework with implications for future gravitational-wave detection techniques.

Abstract

We present an effective phenomenological framework referred to as NonlocalVacuum Information Dynamics (NVID), in which spacetime is modeled as aninformation-processing medium. The framework integrates four conceptual components: (i) nonlocal vacuum response that can contribute to stabilizing wormholegeometries; (ii) dynamical information currents propagating in spacetime; (iii) nonlinear screening that regulates observation-induced perturbations; (iv) boundaryinformation memory layers that store and redistribute information on spacetimeboundaries. Within this formulation the vacuum is described as an informationcarrying medium while spacetime boundaries function as dynamical memory layers.The resulting theory forms a coupled bulk–boundary system in which Einstein-typegeometric dynamics in the bulk is linked to nonlinear reaction–diffusion memorydynamics on wormhole throats. Stored boundary information modifies the effectivethroat geometry and produces observable signatures including echo trains, relaxation spectra, memory echoes, network beat modulation, and geometry-inducedecho delay drift in gravitational-wave signals. Clear falsifiability criteria are identified, making the framework testable with next-generation gravitational-wave detectors such as the Einstein Telescope, Cosmic Explorer, and LISA.

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Cite This Study

Vahit YILDIZ (2026) studied this question.

synapsesocial.com/papers/6a1a82640307b78509434080https://doi.org/10.5281/zenodo.20421402
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