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Capacitor coupling induces synchronization between neural circuits

机译:电容耦合引起神经电路之间的同步

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The signal propagation and information encoding in neurons are much dependent on the activation of synapses function. Electric synapse often plays short-range modulation so that neurons can give fast responses to external stimulus while chemical synapse keeps active under long-range modulation on neural activities. Each neuron can be considered as an intelligent signal processor and appropriate setting in parameters in the electric devices can build reliable neural circuits to detect effective signal exchange and propagation. In this paper, a two-variable FitzHugh-Nagumo electrical oscillator driven by a sinusoidal voltage source is used to investigate the synchronization when the coupling capacitor is activated, which both of the plates of the coupling capacitor can trigger time-varying electric field in the capacitor, and energy flow is propagated to modulate the outputs of neural circuits. The circuit equations are obtained, and scale transformation is applied to get a dimensionless dynamical system under field coupling, and the error function for output voltage and phases is calculated to judge whether complete synchronization and phase synchronization can be realized by selecting different capacitances for the coupling capacitor. It is found that synchronization realization between neurons can be controlled by adjusting the capacitance of coupling capacitor. For two identical neurons driven by the same stimulus, complete synchronization is reached, while phase synchronization is stabilized when neurons are driven by different stimuli as the capacitor coupling is switched on. Furthermore, the realization of complete synchronization is verified on the analog circuits. It provides another new scheme for synchronization realization between neurons and a new mechanism for signal encoding in neurons via field coupling is explained.
机译:在神经元中编码的信号传播和信息很大程度上取决于突触功能的激活。电扫描经常发挥短程调制,以便神经元能够快速应对外部刺激,而化学突触在神经活动的远程调制下保持活跃。每个神经元可以被认为是智能信号处理器,并且电气设备中的参数中的适当设置可以构建可靠的神经电路以检测有效的信号交换和传播。在本文中,通过正弦电压源驱动的双变量FITZHUGH-NAGUMO电振荡器来研究当耦合电容器被激活时的同步,耦合电容器的两个板都可以触发时变电场传播电容器和能量流动以调制神经电路的输出。获得电路方程,并且施加比例转换以获得在场耦合下的无量纲动态系统,并且计算出输出电压和相位的误差函数来判断是否可以通过为耦合选择不同的电容来实现完全同步和相位同步。电容器。结果发现,通过调节耦合电容器的电容,可以控制神经元之间的同步实现。对于由相同刺激驱动的两个相同的神经元,达到完全同步,而当电容器耦合接通时,当电容器耦合被不同的刺激驱动时,稳定相位同步。此外,在模拟电路上验证了完全同步的实现。它提供了另一种用于神经元之间的同步实现的新方案,并解释了通过场耦合的神经元中的信号编码的新机制。

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