(Short Paper20) Physical Transmission Pathways of QPC (Quan tum Pulse Communication) in the In Vivo BioQPU Paradigm: A Decoherence Model of Paraplegia and the Quantum Wave guide Function of Microtubule Networks

In the in vivo Quantum Processing Unit (Bio-QPU) paradigm, Quantum Pulse Communication (QPC) has been proposed as the foundation for extreme motor control, invalidating the millisecond delays inherent in classical transmission. However, the nature of “zero-delay direct synchronization” harbors the danger of inviting a physical misconception (the interpretation of non-physical action at a distance) that it is wireless, non-local communication ignoring space. In this paper, we re-evaluate the classical physical disconnection phenomenon of paraplegia (spinal cord injury) within the framework of QPU theory, proving that QPC does not leap through space but is completely dependent on a highly physical quantum waveguide (infrastructure) known as the “microtubule network” within neurons. Through this formulation, ultra-high-speed synchronization phenomena, typified by hitting a 160 km/h fastball, are consistently explained as spin-pulse communication phenomena that repurpose existing neural cables.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-17
DOI
https://doi.org/10.5281/zenodo.22810857
Primary Topic
Molecular Communication and Nanonetworks
Type
preprint
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(Short Paper20) Physical Transmission Pathways of QPC (Quan tum Pulse Communication) in the In Vivo BioQPU Paradigm: A Decoherence Model of Paraplegia and the Quantum Wave guide Function of Microtubule Networks

kotoan.gg
Zenodo (CERN European Organization for Nuclear Research)
Molecular Communication and Nanonetworks
preprint

(Short Paper20) Physical Transmission Pathways of QPC (Quan tum Pulse Communication) in the In Vivo BioQPU Paradigm: A Decoherence Model of Paraplegia and the Quantum Wave guide Function of Microtubule Networks

kotoan.gg
preprint en

Abstract

In the in vivo Quantum Processing Unit (Bio-QPU) paradigm, Quantum Pulse Communication (QPC) has been proposed as the foundation for extreme motor control, invalidating the millisecond delays inherent in classical transmission. However, the nature of “zero-delay direct synchronization” harbors the danger of inviting a physical misconception (the interpretation of non-physical action at a distance) that it is wireless, non-local communication ignoring space. In this paper, we re-evaluate the classical physical disconnection phenomenon of paraplegia (spinal cord injury) within the framework of QPU theory, proving that QPC does not leap through space but is completely dependent on a highly physical quantum waveguide (infrastructure) known as the “microtubule network” within neurons. Through this formulation, ultra-high-speed synchronization phenomena, typified by hitting a 160 km/h fastball, are consistently explained as spin-pulse communication phenomena that repurpose existing neural cables.

Zenodo (CERN European Organization for Nuclear Research)
Industry, innovation and infrastructure
Molecular Communication and Nanonetworks
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