科学还是非科学?医学研究的挑战-解释神经调节

G. Ewing
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引用次数: 1

摘要

本文的目的是强调格拉科夫自主神经系统的数学模型,格拉科夫博士在该模型的发展中部署的基本概念,并说明该模型已被纳入开发和验证的软件技术(Strannik)。解释调节人体功能的复杂机制是医学上的一大难题。这篇文章强调了一些在医学研究中经常被忽视的具有重大科学意义的问题,例如感觉输入和/或光的影响,压力的影响,身体的生理参数是神经调节的,细胞间酸度(pH)的影响,以及遗传变化往往是自主神经功能障碍的后果,而不是唯一的原因。因此,对这些因素的更深入的了解导致了自主神经系统和生理系统的第一个数学模型。它结合了对感觉输入的重要性的理解,特别是颜色感知,以及大脑和自主神经系统的功能组织,即神经网络和器官网络(生理系统)。人脑计划和大脑计划的存在有效地为新一代医疗技术提供了规范。这使我们能够说明,由I.G. Grakov开发的Strannik技术已经满足了概述的规范,即它满足了人脑项目的关键目标和目标。特别是(i)它可以在现代医学中前所未有的详细和复杂程度上筛查患者的健康状况,即斯特兰尼克虚拟扫描,以及(ii)它可以用于治疗效果,即斯特兰尼克光疗。这使我们能够解决研究人员由于依赖当代生化测试测量而面临的基本限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Science or non-science? The challenge for medical research — To explain neuro-regulation
The aim of the article is to highlight Grakov's mathematical model of the autonomic nervous system, the fundamental concepts which Dr Grakov has deployed in the development of this model, and to illustrate that such model has been incorporated into a developed and validated software technology (Strannik). It is a major dilemma for the medical sciences to explain the complex mechanisms which regulate the body's function. This article highlights a number of scientifically significant issues which are often ignored in medical research yet which have enormous scientific significance e.g. the influence of sensory input and/or light, the influence of stress, that the body's physiological parameters are neurally regulated, the influence of intercellular acidity (pH), and that genetic changes are often the consequence and not solely the cause of autonomic dysfunction. Accordingly, a greater understanding of such factors leads to the first mathematical model of the autonomic nervous system and physiological systems. It incorporates an understanding of the significance of sensory input, in particular of colour perception, and of the functional organisation of the brain and the autonomic nervous system i.e. of neural networks and organ networks (physiological systems). The existence of the Human Brain Project and Brain Initiative effectively provides a specification for a new generation of medical technology. This enables us to illustrate that the Strannik technology developed by I.G. Grakov already meets the specification outlined i.e. that it meets the key aims and objectives of the Human Brain Project. In particular (i) that it can screen patient health in a level of detail and sophistication which is unprecedented in modern medicine i.e. as Strannik Virtual Scanning, and (ii) that it can be deployed with therapeutic effect i.e. as Strannik Light Therapy. This enables us to address fundamental limitations facing researchers because of their reliance upon contemporary biochemical test measurements.
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