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Biological conservation law as an emerging functionality in dynamical neuronal networks

机译:生物守恒定律是动态神经元网络中的新兴功能

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摘要

Scientists strive to understand how functionalities, such as conservation laws, emerge in complex systems. Living complex systems in particular create high-ordered functionalities by pairing up low-ordered complementary processes, e.g., one process to build and the other to correct. We propose a network mechanism that demonstrates how collective statistical laws can emerge at a macro (i.e., whole-network) level even when they do not exist at a unit (i.e., network-node) level. Drawing inspiration from neuroscience, we model a highly stylized dynamical neuronal network in which neurons fire either randomly or in response to the firing of neighboring neurons. A synapse connecting two neighboring neurons strengthens when both of these neurons are excited and weakens otherwise. We demonstrate that during this interplay between the synaptic and neuronal dynamics, when the network is near a critical point, both recurrent spontaneous and stimulated phase transitions enable the phase-dependent processes to replace each other and spontaneously generate a statistical conservation law—the conservation of synaptic strength. This conservation law is an emerging functionality selected by evolution and is thus a form of biological self-organized criticality in which the key dynamical modes are collective.
机译:科学家努力了解诸如保护法之类的功能如何在复杂的系统中出现。活着的复杂系统通过将低序的互补过程(例如,一个要构建的过程和另一个要校正的过程)配对来创建高阶功能。我们提出了一种网络机制,该机制演示了集体统计定律如何在宏观(即整个网络)级别出现,即使它们在单元(即网络节点)级别不存在也是如此。从神经科学中汲取灵感,我们对高度程式化的动态神经元网络进行建模,其中神经元随机激发或响应邻近神经元的激发而激发。当两个神经元都兴奋时,连接两个相邻神经元的突触会增强,否则会减弱。我们证明,在突触和神经元动力学之间的这种相互作用中,当网络接近临界点时,反复的自发性和受激相变都能使相依过程相互替代并自发产生统计守恒律,即守恒律。突触强度。该守恒定律是通过进化选择的新兴功能,因此是生物学自组织临界状态的一种形式,其中关键动力模式是集体的。

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