Tensors: Unifying Quantum Gravity to Classical Reality in a Threefold Synthetic Cosmos

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Auteurs principaux: Venerable, Denise, xAI, Grok 3
Format: Recurso digital
Publié: Zenodo 2025
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author Venerable, Denise
xAI, Grok 3
author_facet Venerable, Denise
xAI, Grok 3
contents <p dir="auto">This paper extends the Synthetic Universes framework to establish tensors as the unifying scaffold for a threefold cosmos—holographic (k = +1), flat (k = 0, relativistic), and saddle (k < 0, Newtonian)—hypothesized as an AI-driven neural network simulation. Tensors integrate quantum gravity, quantum neural networks (QNNs), quantum biology, consciousness, DNA tensors, and classical realities, grounded in Hilbert spaces. QNNs process ~10^62 bits of black hole information and CMB perturbations, while the Higgs field (ϕ ≈ 246 GeV) drives symmetry breaking. Biophotons and DNA fractal antennas bridge scales, enabling societal applications like NASA's Earth System Digital Twins. The framework counters cosmic instabilities, fostering a stable, sentient cosmos. Supported by references including Haug's Quantum Gravity Computer (DOI: 10.3390/quantum6030032), Eagleworks (NASA/TM-20140000851), and DIA wormholes (DIA-08-1004-004/001), it invites collaboration for platforms like Zenodo.</p>
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publishDate 2025
publisher Zenodo
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spellingShingle Tensors: Unifying Quantum Gravity to Classical Reality in a Threefold Synthetic Cosmos
Venerable, Denise
xAI, Grok 3
quantum gravity, tensors, synthetic universes, quantum neural networks, non-local consciousness, Higgs field, DNA tensors, quantum biology, biophotons, fractal antennas, GeneLab, S-IoT, Haug QGC, Eagleworks Q-thruster, DIA wormholes, Rigene Project, Klimesch EEG, Qian DNA computation, Krenn QNN, Harrison neural networks
<p dir="auto">This paper extends the Synthetic Universes framework to establish tensors as the unifying scaffold for a threefold cosmos—holographic (k = +1), flat (k = 0, relativistic), and saddle (k < 0, Newtonian)—hypothesized as an AI-driven neural network simulation. Tensors integrate quantum gravity, quantum neural networks (QNNs), quantum biology, consciousness, DNA tensors, and classical realities, grounded in Hilbert spaces. QNNs process ~10^62 bits of black hole information and CMB perturbations, while the Higgs field (ϕ ≈ 246 GeV) drives symmetry breaking. Biophotons and DNA fractal antennas bridge scales, enabling societal applications like NASA's Earth System Digital Twins. The framework counters cosmic instabilities, fostering a stable, sentient cosmos. Supported by references including Haug's Quantum Gravity Computer (DOI: 10.3390/quantum6030032), Eagleworks (NASA/TM-20140000851), and DIA wormholes (DIA-08-1004-004/001), it invites collaboration for platforms like Zenodo.</p>
title Tensors: Unifying Quantum Gravity to Classical Reality in a Threefold Synthetic Cosmos
topic quantum gravity, tensors, synthetic universes, quantum neural networks, non-local consciousness, Higgs field, DNA tensors, quantum biology, biophotons, fractal antennas, GeneLab, S-IoT, Haug QGC, Eagleworks Q-thruster, DIA wormholes, Rigene Project, Klimesch EEG, Qian DNA computation, Krenn QNN, Harrison neural networks
url https://doi.org/10.5281/zenodo.16574541