The contralateral organization of the human nervous system as a quantum unfolded, holographic-like, artifactual representation of the underlying dynamics of a fundamentally two-dimensional universe.

IF 3.1 4区 医学 Q2 NEUROSCIENCES Frontiers in Systems Neuroscience Pub Date : 2023-01-01 DOI:10.3389/fnsys.2023.987086
Ronald L Zukauskis
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Abstract

A working hypothesis is put forward in this article that the contralateral organization of the human nervous system appears to function like a quantum unfolded holographic apparatus by appearing to invert and reverse quantum unfolded visual and non-visual spatial information. As such, the three-dimensional contralateral organization would be an artifactual representation of the underlying dynamics of a fundamentally two-dimensional universe. According to the holographic principle, nothing that is experienced as three-dimensional could have been processed in a three-dimensional brain. Everything we would experience at a two-dimensional level would appear as a three-dimensional holographic representation, including the architecture of our brains. Various research observations reported elsewhere are reviewed and interpreted here as they may be related in a process that is fundamental to the underlying two-dimensional dynamics of the contralateral organization. The classic holographic method and characteristics of image formation contained by a holograph are described as they relate to the working hypothesis. The double-slit experiment is described and its relevance to the working hypothesis.

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人类神经系统的对侧组织,作为一个量子展开的,全息的,基本的二维宇宙的潜在动力学的人工表现。
本文提出了一种工作假设,即人类神经系统的对侧组织似乎像量子展开全息仪一样,通过反转和反转量子展开的视觉和非视觉空间信息来发挥作用。因此,三维对侧组织将是一个基本的二维宇宙的潜在动力学的人工表示。根据全息原理,任何三维体验都不可能在三维大脑中被处理。我们在二维层面上所经历的一切都会以三维全息的形式出现,包括我们大脑的结构。其他地方报道的各种研究观察在这里进行了回顾和解释,因为它们可能与对侧组织潜在二维动态的基本过程有关。描述了经典全息方法和全息照相所包含的成像特性,因为它们与工作假设有关。描述了双缝实验及其与工作假设的相关性。
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来源期刊
Frontiers in Systems Neuroscience
Frontiers in Systems Neuroscience Neuroscience-Developmental Neuroscience
CiteScore
6.00
自引率
3.30%
发文量
144
审稿时长
14 weeks
期刊介绍: Frontiers in Systems Neuroscience publishes rigorously peer-reviewed research that advances our understanding of whole systems of the brain, including those involved in sensation, movement, learning and memory, attention, reward, decision-making, reasoning, executive functions, and emotions.
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