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Storage of Correlated Patterns in Standard and Bistable Purkinje Cell Models

机译:在标准和双稳态Purkinje细胞模型中存储相关模式

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摘要

The cerebellum has long been considered to undergo supervised learning, with climbing fibers acting as a ‘teaching’ or ‘error’ signal. Purkinje cells (PCs), the sole output of the cerebellar cortex, have been considered as analogs of perceptrons storing input/output associations. In support of this hypothesis, a recent study found that the distribution of synaptic weights of a perceptron at maximal capacity is in striking agreement with experimental data in adult rats. However, the calculation was performed using random uncorrelated inputs and outputs. This is a clearly unrealistic assumption since sensory inputs and motor outputs carry a substantial degree of temporal correlations. In this paper, we consider a binary output neuron with a large number of inputs, which is required to store associations between temporally correlated sequences of binary inputs and outputs, modelled as Markov chains. Storage capacity is found to increase with both input and output correlations, and diverges in the limit where both go to unity. We also investigate the capacity of a bistable output unit, since PCs have been shown to be bistable in some experimental conditions. Bistability is shown to enhance storage capacity whenever the output correlation is stronger than the input correlation. Distribution of synaptic weights at maximal capacity is shown to be independent on correlations, and is also unaffected by the presence of bistability.
机译:长期以来,小脑一直被认为是经过监督的学习,攀爬纤维充当“教学”或“错误”信号。小脑皮层的唯一输出浦肯野细胞(PC)被认为是存储输入/输出关联的感知器的类似物。为支持这一假设,最近的一项研究发现,成年大鼠中感知器突触权重的最大分布与实验数据完全吻合。但是,计算是使用随机不相关的输入和输出执行的。这显然是不现实的假设,因为感觉输入和运动输出带有很大程度的时间相关性。在本文中,我们考虑具有大量输入的二进制输出神经元,这是存储以二进制马尔可夫链为模型存储二进制输入和输出的时间相关序列之间的关联所必需的。发现存储容量随着输入和输出相关性的增加而增加,并且在两者趋于一致的极限中发散。我们还研究了双稳态输出单元的容量,因为PC在某些实验条件下已显示为双稳态。当输出相关性强于输入相关性时,显示出双稳态可增强存储容量。最大容量下的突触权重分布显示出与相关性无关,并且不受双稳性的影响。

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