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Quantum-Classical Correspondence in the Brain:Scaling,Action Distances and Predictability behind Neural Signals

机译:大脑中的量子经典对应:神经信号背后的尺度,作用距离和可预测性

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Quantum models of higher level brain functions such as conscious experience,suggest that the neural correlate of mentation requires dynamical properties instantiated at the Planck-scale.Several candidate quantum processes have been suggested,but it remains to be seen how these quantum properties can relate to the established classical signals in the brain involving physical action twenty magnitudes above the quantum domain.In this paper we show the results of a systematic analysis of Lagrangian action order to brain processes at different scales of resolution.The results encompass processes at the macroscopic single cell level to processes at the sub-molecular and concerted molecular population level.It is shown that the state of ions in the permeation filter of channel proteins,as for example indicated by the MacKinnon KcsA 1C channel model,is a quantum phenomenon involving a Lagrangian in the order of 10~(~34) Js.Further,we show that the brain spans at least 20 orders of magnitudes of physical action with physiologically significant signal properties.We suggest that the quantum-classical correspondence in the brain is resolved by the spread of quantum-witness states that correlate with the gating states of voltage sensitive ion channels.
机译:具有高级大脑功能的量子模型,例如有意识的经验,建议精神状态的神经关联需要在普朗克尺度上实例化的动力学特性。已经提出了几种候选量子过程,但是这些量子特性如何与建立的涉及大脑的经典信号涉及比量子域高20个数量级的物理动作。本文展示了系统分析拉格朗日动作阶次对不同分辨率尺度下的大脑过程的结果,结果涵盖了宏观单细胞过程可以看出,通道蛋白的渗透过滤器中的离子状态,例如MacKinnon KcsA 1C通道模型所表明的,是一种涉及拉格朗日方程的量子现象。大约10〜(〜34)Js。此外,我们还发现大脑的跨度至少为20个数量级f具有生理学意义的信号特性的物理动作。我们认为,大脑中的量子经典对应关系可以通过与电压敏感离子通道的门控状态相关的量子见证状态的扩散来解决。

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