Entanglement, thermalisation and stationarity: The computational foundations of quantum mechanics

dc.creatorGuruprasad, V.
dc.date2000-05-04
dc.date.accessioned2026-07-07T05:59:56Z
dc.date.available2026-07-07T05:59:56Z
dc.description'Tis said, to know others is to be learned, to know oneself, wise - I demonstrate that it could be more fundamental than knowing the rest of nature, by applying classical computational principles and engineering hindsight to derive and explain quantum entanglement, state space formalism and the statistical nature of quantum mechanics. I show that an entangled photon pair is literally no more than a 1-bit hologram, that the quantum state formalism is completely derivable from general considerations of representation of physical information, and that both the probabilistic aspects of quantum theory and the constancy of h are exactly predicted by the thermodynamics of representation, without precluding a fundamental, relative difference in spatial scale between non-colocated observers, leading to logical foundations of relativity and cosmology that show the current thinking in that field to be simplistic and erroneous.
dc.description10 pages
dc.identifierhttps://arxiv.org/abs/quant-ph/0005021
dc.identifierhttp://arxiv.org/abs/quant-ph/0005021
dc.identifier.urihttp://salesiana.dossiersoluciones.com/handle/123456789/88865
dc.subjectQuantum Physics
dc.titleEntanglement, thermalisation and stationarity: The computational foundations of quantum mechanics
dc.typetext

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