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March 10, 20260 citationsOpen Access

A 5D Deterministic Phase-Space Hypothesis: Parallel Realities as Sequential Scanning States on the Anadihilo Substrate

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NDNitin Dagar

Key Points

  • To propose a deterministic framework in quantum mechanics and cosmology that resolves paradoxes associated with probabilistic models.
  • Developed a 5-dimensional phase-space hypothesis
  • Introduced the concept of an informational substrate (Anadihilo)
  • Outlined a 15-layer architecture with a Master Clock engine
  • Mapped mathematical solutions for quantum phenomena
  • Formulated 'Pixel-Parallel Equivalence' regarding spatial resolution limits.
  • Demonstrated quantum jumps can be interpreted as phase-address updates
  • Explained continuity of macro-objects through phase synchronization
  • Predicted simultaneous termination of all parallel branches upon reaching a saturation limit.

Abstract

Current interpretations of quantum mechanics and cosmology frequently invoke the concept of a probabilistic multiverse to explain wave-function collapse, fine-tuning, and macro-micro disparities. These models often lead to unresolved paradoxes regarding infinite energy distribution and spatial overlapping. Building upon prior structural dynamics, we propose an alternative, strictly deterministic hypothesis utilizing a 5-dimensional phase-space framework governed by an absolute informational substrate, denoted as (Anadihilo). In this framework, parallel realities are not spatially distinct multiverses, but rather sequentially rendered phase-states (θ) existing on a singular, unified 3D grid. We outline a 15-layer informational architecture where a central Master Clock engine, operating at the L6/L7 interface as a high-frequency scanning sine wave, drives the manifestation of physical matter. We provide step-by-step mathematical derivations mapping the 5D position vector utilizing the universal grid constant (i=0. 0001) and formulate the "Pixel-Parallel Equivalence, " hypothesizing that the maximum capacity for parallel branches correlates directly to the spatial resolution limit of the grid (approximately 10¹25 voxels). Furthermore, we provide deterministic mathematical solutions for phenomena traditionally deemed probabilistic: interpreting quantum jumps as forced phase-address updates, and explaining the apparent continuity of macro-objects as frame-locked phase synchronization due to high systemic anchoring mass. Finally, this model predicts a unified systemic dissolution, positing that all parallel branches must terminate simultaneously with the primary phase-reality upon reaching the operational saturation limit of fundamental anchors.

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Cite This Study

Nitin Dagar (2026) studied this question.

synapsesocial.com/papers/69af95de70916d39fea4df58https://doi.org/10.5281/zenodo.18908758
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