Quantum Neurobiology

Q2 Physics and Astronomy
M. Swan, R. D. Dos Santos, Frank Witte
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引用次数: 3

Abstract

Quantum neurobiology is concerned with potential quantum effects operating in the brain and the application of quantum information science to neuroscience problems, the latter of which is the main focus of the current paper. The human brain is fundamentally a multiscalar problem, with complex behavior spanning nine orders of magnitude-scale tiers from the atomic and cellular level to brain networks and the central nervous system. In this review, we discuss a new generation of bio-inspired quantum technologies in the emerging field of quantum neurobiology and present a novel physics-inspired theory of neural signaling (AdS/Brain (anti-de Sitter space)). Three tiers of quantum information science-directed neurobiology applications can be identified. First are those that interpret empirical data from neural imaging modalities (EEG, MRI, CT, PET scans), protein folding, and genomics with wavefunctions and quantum machine learning. Second are those that develop neural dynamics as a broad approach to quantum neurobiology, consisting of superpositioned data modeling evaluated with quantum probability, neural field theories, filamentary signaling, and quantum nanoscience. Third is neuroscience physics interpretations of foundational physics findings in the context of neurobiology. The benefit of this work is the possibility of an improved understanding of the resolution of neuropathologies such as Alzheimer’s disease.
量子神经生物学
量子神经生物学关注大脑中潜在的量子效应,以及量子信息科学在神经科学问题中的应用,后者是本文的主要重点。人类大脑本质上是一个多标量问题,复杂的行为跨越九个数量级,从原子和细胞水平到大脑网络和中枢神经系统。在这篇综述中,我们讨论了量子神经生物学新兴领域的新一代生物启发量子技术,并提出了一种新的物理启发神经信号理论(AdS/Brain (anti-de Sitter space))。量子信息科学导向的神经生物学应用可以分为三个层次。首先是那些用波函数和量子机器学习解释神经成像模式(EEG, MRI, CT, PET扫描),蛋白质折叠和基因组学的经验数据的人。第二种是将神经动力学发展为量子神经生物学的广泛方法,包括用量子概率、神经场理论、纤维信号传导和量子纳米科学评估的叠加数据建模。第三是在神经生物学的背景下对基础物理发现的神经科学物理学解释。这项工作的好处是有可能提高对阿尔茨海默病等神经病理学解决方案的理解。
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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来源期刊
Quantum Reports
Quantum Reports Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
3.30
自引率
0.00%
发文量
33
审稿时长
10 weeks
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