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May 16, 20260 citationsOpen Access

Observational Holographic Matrix Theory: Holographic Matrices, Transceptor Observers, and Emergent Spacetime

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IKIñigo Koch

Key Points

  • The research aims to establish a framework where spacetime emerges from holographic matrices, challenging traditional views of spacetime as fundamental.
  • Developed Observational Holographic Matrix Theory (OHMT) as a theoretical framework.
  • Modeled observers as transceptors interacting with holographic matrices.
  • Identified five testable predictions including variations in cosmological constants and correlations with dark energy.
  • OHMT reformulates six major physics problems, such as the quantum measurement problem and cosmological fine-tuning.
  • In resonance, multiple observers emit intensity that scales quadratically, while their collective matrix displacement scales linearly.
  • Predictions include temporal variations of the effective cosmological constant and correlations with fundamental constants.

Abstract

We present Observational Holographic Matrix Theory (OHMT), a theoretical framework in which physical spacetime is not ontologically fundamental but emerges as the decoded output of an atemporal space of two-dimensional holographic matrices, each encoding a complete present configuration of physical reality. Each observer is modelled as a transceptor: a bidirectional operator that both decodes a holographic matrix into experienced 3+1-dimensional spacetime and induces a coherence-dependent back-reaction on the matrix space, with coupling strength governed by an Observer Coherence Parameter defined via holographic mutual information. When multiple observers achieve resonance, their collective emission intensity scales quadratically while the resulting displacement of the consensus matrix scales linearly in collective coherence. OHMT reframes six foundational problems of contemporary physics — including the quantum measurement problem, the arrow of time, the initial cosmological singularity, cosmological fine-tuning, and the quantum-gravitational tension — by identifying a common structural feature: the assumption that spacetime is ontologically fundamental together with the absence of a dynamical role for the observer. The quantum-classical divide is reformulated as a process/output distinction: quantum physics governs navigation in the matrix space, while classical physics governs the decoded spacetime output. The framework yields five observational consequences formulated as testable predictions, including temporal variation of the effective cosmological constant, holographic scaling laws for information and decoherence, stochastic metric fluctuations correlated with dark energy evolution, and correlated variation of fundamental constants. OHMT draws on the structure of the string theory landscape as a physically motivated window into the topology and transition structure of the matrix space, while recognising that the matrix space as an infinite-dimensional manifold is not fully characterised by any finite set of string vacua.

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Cite This Study

Iñigo Koch (2026) studied this question.

synapsesocial.com/papers/6a080acea487c87a6a40ccd8https://doi.org/10.5281/zenodo.20174749
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