Ascoli Giorgio A
Krasnow Institute for Advanced Study, George Mason University, Fairfax, 22030-4444 VA, USA.
ISRN Neurosci. 2013 Apr 14;2013:261364. doi: 10.1155/2013/261364. eCollection 2013.
This paper aims to frame certain fundamental aspects of the human mind (content and meaning of mental states) and foundational elements of brain computation (spatial and temporal patterns of neural activity) so as to enable at least in principle their integration within one and the same quantitative representation. Through the history of science, similar approaches have been instrumental to bridge other seemingly mysterious scientific phenomena, such as thermodynamics and statistical mechanics, optics and electromagnetism, or chemistry and quantum physics, among several other examples. Identifying the relevant levels of analysis is important to define proper mathematical formalisms for describing the brain and the mind, such that they could be mapped onto each other in order to explain their equivalence. Based on these premises, we overview the potential of neural connectivity to provide highly informative constraints on brain computational process. Moreover, we outline approaches for representing cognitive and emotional states geometrically with semantic maps. Next, we summarize leading theoretical framework that might serve as an explanatory bridge between neural connectivity and mental space. Furthermore, we discuss the implications of this framework for human communication and our view of reality. We conclude by analyzing the practical requirements to manage the necessary data for solving the mind-brain problem from this perspective.
本文旨在构建人类思维的某些基本方面(心理状态的内容和意义)以及大脑计算的基础要素(神经活动的时空模式),以便至少在原则上能够将它们整合到同一个定量表示中。在科学史上,类似的方法有助于弥合其他看似神秘的科学现象,如热力学与统计力学、光学与电磁学,或化学与量子物理学等诸多例子。确定相关的分析层次对于定义描述大脑和思维的适当数学形式很重要,这样它们就可以相互映射以解释它们的等效性。基于这些前提,我们概述了神经连接性为大脑计算过程提供高度信息性约束的潜力。此外,我们概述了用语义地图以几何方式表示认知和情感状态的方法。接下来,我们总结了可能作为神经连接性和心理空间之间解释桥梁的主要理论框架。此外,我们讨论了该框架对人类交流和我们对现实看法的影响。我们通过分析从这个角度解决心脑问题所需管理必要数据的实际要求来得出结论。