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Some Joys and Trials of Mathematical Neuroscience

机译:数学神经科学的一些喜悦和尝试

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摘要

I describe the basic components of the nervous system--neurons and their connections via chemical synapses and electrical gap junctions--and review the model for the action potential produced by a single neuron, proposed by Hodgkin and Huxley (HH) over 60 years ago. I then review simplifications of the HH model and extensions that address bursting behavior typical of motoneurons, and describe some models of neural circuits found in pattern generators for locomotion. Such circuits can be studied and modeled in relative isolation from the central nervous system and brain, but the brain itself (and especially the human cortex) presents a much greater challenge due to the huge numbers of neurons and synapses involved. Nonetheless, simple stochastic accumulator models can reproduce both behavioral and electrophysiological data and offer explanations for human behavior in perceptual decisions. In the second part of the paper I introduce these models and describe their relation to an optimal strategy for identifying a signal obscured by noise, thus providing a norm against which behavior can be assessed and suggesting reasons for suboptimal performance. Accumulators describe average activities in brain areas associated with the stimuli and response modes used in the experiments, and they can be derived, albeit non-rigorously, from simplified HH models of excitatory and inhibitory neural populations. Finally, I note topics excluded due to space constraints and identify some open problems.
机译:我描述了神经系统的基本组成部分-神经元及其通过化学突触和电间隙连接的连接-并回顾了霍奇金和赫x黎(HH)于60年前提出的单个神经元产生的动作电位模型。然后,我回顾了HH模型的简化和解决运动神经元典型爆发行为的扩展,并描述了在模式发生器中用于运动的神经回路的一些模型。可以相对于中枢神经系统和大脑相对隔离地研究和建模此类电路,但是由于涉及大量的神经元和突触,因此大脑本身(尤其是人类皮质)面临着更大的挑战。但是,简单的随机蓄积器模型可以重现行为和电生理数据,并在感知决策中为人类行为提供解释。在本文的第二部分中,我介绍了这些模型,并描述了它们与识别被噪声掩盖的信号的最佳策略的关系,从而提供了可以评估其行为的规范,并提出了性能欠佳的原因。累加器描述了与实验中使用的刺激和反应模式相关的大脑区域中的平均活动,并且它们可以(尽管不是严格地)从兴奋性和抑制性神经群体的简化HH模型获得。最后,我注意到由于篇幅限制而被排除在外的主题,并指出了一些未解决的问题。

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