Quantum Entanglement of the Brain, Dynamics of Information, and Intelligent Finance

Ana Njegovanović
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Abstract

Our research forms two directions, the first considers two approaches to the brain, one based on classical mechanics, the second using quantum physics, the second direction of research refers to the dynamics of0 information as an interaction between differential geometry, mathematical statistics, probability theory. and quantum mechanics which led to the construction of classical and quantum information geometry. Financial entanglement is multidimensiona in time and space, dynamic, less understood and interesting because it functions in real life, like the brain. Neuroscientists who focus on mathematical frameworks for how the brain’s shape affects its activity—an area of mathematical neuroscience called neural field theory  will begin to understand the relationship between brain shape, structure, and function in yet another way. Analysis of research into the geometry of the brain’s contours, that is, the way in which brain activity resonates over and through its architecture, is perhaps more significant than the connections between neurons. Research by scientists from the University of Sydney and Monash University showed that the overall shape and geometry of the human brain – its contours and curvature – has a greater influence on brain dynamics than the internal connectivity of brain cells (Our brain shape influences how it works, 2023) in short, Australian scientists indicate the possibility of predicting brain function directly from its shape. “We have long thought that specific thoughts or sensations elicit activity in specific parts of the brain, but this study reveals that structured patterns of activity are excited across nearly the entire brain, just like the way in which a musical note arises from vibrations occurring along the entire length of a violin string, and not just an isolated segment,” (Dr J. Pang,2023).”We found that eigenmodes defined by brain geometry – its contours and curvature – represented the strongest anatomical constraint on brain function, much like the shape of a drum influences the sounds it can make” (A. Fornito, 2023). “Using mathematical models, we confirmed theoretical predictions that the close link between geometry and function is driven by wave-like activity propagating throughout the brain, just as the shape of a pond influences the wave ripples that are formed by a falling pebble” (A. Fornito, 2023).
大脑的量子纠缠、信息动力学和智能金融
我们的研究形成了两个方向,第一个考虑大脑的两种方法,一个基于经典力学,第二个使用量子物理,第二个研究方向是指信息的动力学作为微分几何,数理统计,概率论之间的相互作用。量子力学导致了经典和量子信息几何的建立。财务纠纷感在时间和空间上是多维的、动态的、不易理解的,但却很有趣,因为它在现实生活中发挥作用,就像大脑一样。专注于研究大脑形状如何影响其活动的数学框架的神经科学家——数学神经科学的一个领域,称为神经场论——将开始以另一种方式理解大脑形状、结构和功能之间的关系。对大脑轮廓的研究分析,也就是大脑活动在其结构上产生共鸣的方式,可能比神经元之间的联系更重要。悉尼大学和莫纳什大学的科学家的研究表明,人类大脑的整体形状和几何形状——它的轮廓和曲率——对大脑动力学的影响比脑细胞的内部连接更大(我们的大脑形状影响它如何工作,2023)。简而言之,澳大利亚科学家指出了直接从大脑形状预测大脑功能的可能性。“长期以来,我们一直认为特定的想法或感觉会引发大脑特定部位的活动,但这项研究表明,活动的结构化模式几乎会在整个大脑中被激发,就像一个音符是由沿小提琴弦的整个长度振动产生的,而不仅仅是一个孤立的部分,”(J. Pang博士,2023)。我们发现,由大脑几何形状定义的特征模式——它的轮廓和曲率——代表了对大脑功能最强烈的解剖学约束,就像鼓的形状影响它发出的声音一样”(a . Fornito, 2023)。“使用数学模型,我们证实了理论预测,即几何和功能之间的密切联系是由在整个大脑中传播的波状活动驱动的,就像池塘的形状影响由下落的鹅卵石形成的波浪涟漪一样”(a . Fornito, 2023)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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