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Avalanche and edge-of-chaos criticality do not necessarily co-occur in neural networks

机译:Avalanche和Chaos关键性并不一定在神经网络中共同发生

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摘要

There are indications that for optimizing neural computation, neural networks may operate at criticality. Previous approaches have used distinct fingerprints of criticality, leaving open the question whether the different notions would necessarily reflect different aspects of one and the same instance of criticality, or whether they could potentially refer to distinct instances of criticality. In this work, we choose avalanche criticality and edge-of-chaos criticality and demonstrate for a recurrent spiking neural network that avalanche criticality does not necessarily entrain dynamical edge-of-chaos criticality. This suggests that the different fingerprints may pertain to distinct phenomena. Published by AIP Publishing.
机译:存在存在用于优化神经计算,神经网络可以在临界性下操作。 以前的方法使用了不同的临界指纹,留下了不同概念的问题,不同的概念是否必然反映一个和相同的临界实例的不同方面,或者它们是否可能指的是临界的不同情况。 在这项工作中,我们选择雪崩临界和边缘关键性,并证明了刺激性的神经网络,刺激临界性不一定纳入动态边缘的混沌临界性。 这表明不同的指纹可能涉及不同的现象。 通过AIP发布发布。

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