完整脑理论的新见解:对主动意识的影响

Eda Alemdar, Roman Poznanski, Roman Poznanski, Lleuvelyn Cacha, Gerry Leisman, Erkki Brandas
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摘要

这项开创性的研究是关于我们大脑深处的特定分子如何在相空间中形成一个动态的信息整体,将思想和意识联系起来,不仅具有挑衅性,而且具有革命性。Holonomic是对holonic观点的动态封装,起源于“holon”这个词,它指的是一个整体的、而不是一个分层的、动态的大脑组织,它包含了多尺度效应。意识相互联系的单一性源于大脑的多标量组织。我们的目标是给出一个完整的修改热力学方法的问题,意识使用时空间歇性。从准粒子作为动态大脑的极简物质组成开始,其中准粒子的非相干波及其量子热涨落之间的干涉模式通过负熵衍生量子势的信息通道约束内源性分子的动能内能。这表明大脑不是涉及雪崩的多重分形,而是多标量的,这表明与全息图不同,功能相互作用发生在光谱域,时空结合是多标量的,因为通过远程相关信息发生的自我参照放大。相关的负熵纠缠渗透到跨多个尺度的功能信息架构的统一中。因此,完整的大脑理论适用于主动意识,证明意识不是基本的。大脑内部空间的完整模型是非度量的和非分形的。它包含一个多标量信息结构,由负熵衍生量子势波动中的间歇性尖峰解码。因此,它是一种比相空间中的柏拉图式模型更现实的方法。
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New insights into holonomic brain theory: implications for active consciousness
This pioneering research on how specific molecules deep inside our brains form a dynamic information holarchy in phase space, linking mind and consciousness, is not only provocative but also revolutionary. Holonomic is a dynamic encapsulation of the holonic view that originates from the word “holon” and designates a holarchical rather than a hierarchical, dynamic brain organization to encompass multiscale effects. The unitary nature of consciousness being interconnected stems from a multiscalar organization of the brain. We aim to give a holonomic modification of the thermodynamic approach to the problem of consciousness using spatiotemporal intermittency. Starting with quasiparticles as the minimalist material composition of the dynamical brain where interferences patterns between incoherent waves of quasiparticles and their quantum-thermal fluctuations constrain the kinetic internal energy of endogenous molecules through informational channels of the negentropically-derived quantum potential. This indicates that brains are not multifractal involving avalanches but are multiscalar, suggesting that unlike the hologram, where the functional interactions occur in the spectral domain, the spatiotemporal binding is multiscalar because of self-referential amplification occurring via long-range correlative information. The associated negentropic entanglement permeates the unification of the functional information architecture across multiple scales. As such, the holonomic brain theory is suitable for active consciousness, proving that consciousness is not fundamental. The holonomic model of the brain’s internal space is nonmetric and nonfractal. It contains a multiscalar informational structure decoded by intermittency spikes in the fluctuations of the negentropically-derived quantum potential. It is therefore, a more realistic approach than the platonic models in phase space.
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