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Intermittent chaos, self-organization, and learning from synchronous synaptic activity in model neuron networks.

机译:间歇性混乱,自我组织以及模型神经元网络中同步突触活动的学习。

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摘要

Self-organization of frequencies is studied by using model neurons called VCONs (voltage-controlled oscillator neuron models). These models give direct access to frequency information, in contrast to all-or-none neuron models, and they generate voltage spikes that phase-lock to oscillatory stimulation, similar to phase-locking of action potentials to oscillatory voltage stimulation observed in Hodgkin-Huxley preparations of squid axons. The rotation vector method is described and used to study how networks synchronize, even in the presence of noise or when damaged; the entropy of ratios of phases is used to construct an energy function that characterizes organized behavior. Computer simulations show that rotation numbers (output frequency/input frequency) describe both chaotic and nonchaotic behavior. Learning occurs when synaptic connections strengthen in response to stimulation that is synchronous with cell activity. It is shown that intermittent chaotic firing is suppressed and simple stable responses are enhanced by such learning in VCON networks. This analysis provides a rigorous basis for further investigation of the ideas of Wiener [Wiener, N. (1961) Cybernetics (MIT Press, Cambridge, MA), p. 191] on the origin of slow brain waves due to "the pulling together of frequencies."
机译:通过使用称为VCON(压控振荡器神经元模型)的模型神经元研究频率的自组织。与全非神经元模型相比,这些模型可以直接访问频率信息,并且它们生成的电压尖峰可以与振荡刺激锁相,类似于在霍奇金-赫克斯利中观察到的动作电位对振荡电压刺激的锁相。鱿鱼轴突的制备。描述了旋转矢量方法,该方法用于研究网络如何同步,即使存在噪声或损坏时也是如此。相比率的熵用于构建表征有组织行为的能量函数。计算机仿真表明,旋转数(输出频率/输入频率)描述了混沌行为和非混沌行为。当突触连接响应与细胞活动同步的刺激而增强时,就会发生学习。结果表明,通过在VCON网络中进行这种学习,可以抑制间歇性混沌激发并增强简单的稳定响应。这种分析为进一步研究维纳的思想提供了严格的基础[Wiener,N.(1961)Cyber​​netics(MIT Press,Cambridge,MA),p。 191]是由于“频率的共同作用”导致的缓慢脑电波的起源。

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    Hoppensteadt, F C;

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  • 年度 1989
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  • 正文语种 en
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