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物理因果关系与大脑理论。

Physical causality and brain theories.

作者信息

Yates F E

出版信息

Am J Physiol. 1980 May;238(5):R277-90. doi: 10.1152/ajpregu.1980.238.5.R277.

Abstract

The history of deterministic theories in physics is reviewed, and four levels of determinism are found: 1) absolute, 2) asymptotic, 3) probabilistic, and 4) absolute indeterminism. Nagel's view that all causal laws are deterministic in the frame of the state descriptions to which they refer is acknowledged, but the inevitability of macroscopic measurement noise may hint that dynamical laws are innately noisy. Quantum mechanical effects are not the noise source. Symmetry and broken symmetry are introduced as physical concepts that can account both for lawfulness, and for the hierarchical nature of the universe. Physical ideas are chosen over those of formal systems with indirect self-reference as the basis of a global theory of brains. By exclusion it is concluded that only a statistical thermodynamics, combined with nonlinear mechanics, has the features needed for theorizing about brains in a physical sense. Quantum mechanics is judged not to be relevant. New statistical thermodynamic theories are briefly described, and their strengths and weaknesses noted. The question, "Why should neuroscience look to physics for its theories?" is raised and answered. Some concrete objectives for a program of theoretical research are stated.

摘要

回顾了物理学中决定论理论的历史,并发现了四个层次的决定论:1)绝对决定论,2)渐近决定论,3)概率决定论,4)绝对非决定论。纳格尔认为,所有因果律在其所涉及的状态描述框架内都是决定论的,这一观点得到认可,但宏观测量噪声的必然性可能暗示动力学定律本质上是有噪声的。量子力学效应不是噪声源。引入对称性和破缺对称性作为物理概念,它们既能解释规律性,又能解释宇宙的层级性质。在以间接自指为基础的形式系统的物理概念中进行选择,以此作为大脑全局理论的基础。通过排除法得出结论,只有统计热力学与非线性力学相结合,才具有从物理意义上对大脑进行理论化所需的特征。判断量子力学与之无关。简要描述了新的统计热力学理论,并指出了它们的优缺点。提出并回答了“为什么神经科学要从物理学中寻找其理论?”这一问题。阐述了理论研究计划的一些具体目标。

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