A.V. Chalyi, K. Chalyi, E.V. Zaitseva, E.N. Chaika, I.P. Kryvenko
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引用次数: 0
Abstract
The main purpose of this review article is to use the fluctuation theory of phase transitions for studying the process of the emergence of hexagonal grid cells in the brain (2014 Nobel Prize in Physiology or Medicine). Particular attention is paid to the application of the Feynman’s classification of three stages of the study of natural phenomena for: 1) a brief description of the experimental stage of the discovery of the hexagonal structures of grid cells in human and animal brains; 2) the theoretical stage of research on the hexagon formation in the physical system of Benard cells, as well as the neurophysiological system of grid cells, discovered by Edward Mozer and May-Britt Mozer; 3) the most important stage, which allows one to formulate the first principle of the emergence of grid cells in the brain and, generally speaking, the first principle for the hexagon formation in different objects of inanimate and living nature. Our original theoretical findings are the following: (a) Polyakov’s conformal invariance hypothesis is violated for a system of grid cells in the brain; (b) the system of grid cells in the brain belongs to the universality class including the 3D Ising model in a magnetic field, as well as a real classical liquid-vapor system;(c) to formulate the first principle for a reliable theoretical justification of the emergence of hexagonal grid cells in the brain, it is necessary to use the fluctuating part of Gibbs thermodynamic potential (the Ginzburg–Landau Hamiltonian) for a system with chemical (biochemical) reactions.
这篇综述文章的主要目的是利用相变的波动理论来研究大脑六边形网格细胞的出现过程(2014年诺贝尔生理学或医学奖)。特别注意应用费曼对自然现象研究的三个阶段的分类:1)简要描述了发现人类和动物大脑中网格细胞六边形结构的实验阶段;2) Edward Mozer和May-Britt Mozer发现的Benard细胞物理系统中的六边形形成以及网格细胞的神经生理系统的理论研究阶段;3)最重要的阶段,在这个阶段,人们可以形成大脑中网格细胞出现的第一原理,一般来说,是无生命和有生命的自然界中不同物体六边形形成的第一原理。我们最初的理论发现如下:(a)对于大脑中的网格细胞系统,违反了Polyakov的共形不变性假设;(b)大脑中的网格细胞系统属于普普性类,包括磁场中的三维Ising模型,以及真正的经典液-气系统;(c)为了制定大脑中六边形网格细胞出现的可靠理论证明的第一原理,有必要使用吉布斯热力学势的波动部分(金兹堡-朗道哈密顿量)对于化学(生化)反应系统。
期刊介绍:
Ukrainian Journal of Physics is the general physics edition of the Department of Physics and Astronomy of the National Academy of Sciences of Ukraine. The journal publishes original papers and reviews in the fields of experimental and theoretical physics.