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迈向大脑活动的第四个空间维度。

Towards a fourth spatial dimension of brain activity.

作者信息

Tozzi Arturo, Peters James F

机构信息

Center for Nonlinear Science, University of North Texas, 1155 Union Circle, #311427, Denton, TX 76203-5017 USA.

Department of Electrical and Computer Engineering, University of Manitoba, 75A Chancellor's Circle, Winnipeg, MB R3T 5V6 Canada.

出版信息

Cogn Neurodyn. 2016 Jun;10(3):189-99. doi: 10.1007/s11571-016-9379-z. Epub 2016 Feb 3.

Abstract

Current advances in neurosciences deal with the functional architecture of the central nervous system, paving the way for general theories that improve our understanding of brain activity. From topology, a strong concept comes into play in understanding brain functions, namely, the 4D space of a "hypersphere's torus", undetectable by observers living in a 3D world. The torus may be compared with a video game with biplanes in aerial combat: when a biplane flies off one edge of gaming display, it does not crash but rather it comes back from the opposite edge of the screen. Our thoughts exhibit similar behaviour, i.e. the unique ability to connect past, present and future events in a single, coherent picture as if we were allowed to watch the three screens of past-present-future "glued" together in a mental kaleidoscope. Here we hypothesize that brain functions are embedded in a imperceptible fourth spatial dimension and propose a method to empirically assess its presence. Neuroimaging fMRI series can be evaluated, looking for the topological hallmark of the presence of a fourth dimension. Indeed, there is a typical feature which reveal the existence of a functional hypersphere: the simultaneous activation of areas opposite each other on the 3D cortical surface. Our suggestion-substantiated by recent findings-that brain activity takes place on a closed, donut-like trajectory helps to solve long-standing mysteries concerning our psychological activities, such as mind-wandering, memory retrieval, consciousness and dreaming state.

摘要

神经科学的当前进展涉及中枢神经系统的功能结构,为增进我们对大脑活动理解的一般理论铺平了道路。从拓扑学角度来看,一个强大的概念在理解大脑功能时发挥作用,即“超球面环面”的四维空间,这对于生活在三维世界的观察者来说是无法察觉的。这个环面可以比作一个有双翼飞机进行空战的电子游戏:当一架双翼飞机从游戏显示屏的一边飞出去时,它不会坠毁,而是从屏幕的另一边重新出现。我们的思维表现出类似的行为,也就是说,能够以一种连贯的画面将过去、现在和未来的事件联系起来,就好像我们能够在脑海中的万花筒里看到过去、现在和未来这三个“拼接”在一起的屏幕。在此,我们假设大脑功能嵌入在一个不可察觉的第四空间维度中,并提出一种实证评估其存在的方法。可以对神经成像功能磁共振成像(fMRI)系列进行评估,寻找第四维度存在的拓扑学特征。确实,有一个典型特征揭示了功能性超球面的存在:三维皮质表面上相互对侧区域的同时激活。我们的观点——有近期研究结果支持——即大脑活动发生在一条封闭的、类似甜甜圈的轨迹上,这有助于解决长期以来关于我们心理活动的谜团,比如走神、记忆检索、意识和梦境状态。

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