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Adaptation of the generalized Carnot cycle to describe thermodynamics of cerebral cortex

机译:适应广义卡诺循环以描述大脑皮层的热力学

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The brain is a thermodynamic system operating far from equilibrium. Its function is to extract microscopic sensory information from the volleys of action potentials (pulses) that are delivered by immense arrays of sensory receptors, construct the macroscopic meaning of the information, and store, retrieve, and update that meaning by incorporating it into its knowledge base. The function is executed repetitively in the action-perception-assimilation cycle. Each cycle commences by a phase transition, in which the immense population comprising each sensory cortex condenses from a gas-like state to a liquid-like state. It ends with return of the cortex to the expectant gas-like state. We have modeled the microscopic thermodynamics of the cycle using quantum field theory. Our new result is modeling cortical macroscopic thermodynamics with the generalized Carnot cycle, in which the energy required for the construction of knowledge is supplied by brain metabolism and is dissipated as heat by the cerebral circulation. What makes the application possible is the unprecedented precision with which spatial patterns of ECoG are measured, thus providing precise state variables with which to represent energy vs. entropy. We present experimental evidence that these isothermal processes are coupled by adiabatic cooling and heating. We postulate that the action-perception-assimilation cycle comprises minimally three consecutive Carnot cycles required for basic perception, assimilation, and decision, and more cycles with greater complexity of cognitive tasks at hand.
机译:大脑是一个热力学系统,其运作远非平衡状态。它的功能是从大量感官受体传递的动作电位(脉冲)中提取微观感官信息,构造信息的宏观含义,并将其纳入其知识中,以存储,检索和更新该含义。根据。该功能在动作感知同化循环中重复执行。每个循环以相变开始,在相变中,包括每个感觉皮层的大量细胞从气态凝结成液状。它以皮质返回到预期的气态结束。我们已经使用量子场论对循环的微观热力学进行了建模。我们的新结果是使用广义卡诺循环模拟皮质宏观热力学,其中知识构建所需的能量由脑代谢提供,并由脑循环以热量消散。使该应用成为可能的是前所未有的精度,通过该精度可以测量ECoG的空间模式,从而提供了精确的状态变量,用以表示能量与熵。我们目前提供的实验证据表明,这些等温过程是通过绝热冷却和加热相结合的。我们假设,行动-知觉-同化循环至少包括三个连续的卡诺循环,这三个循环是基本感知,同化和决策所需的循环,以及更多的循环,其手头的认知任务更加复杂。

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