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Single dendritic neuron with nonlinear computation capacity: A case study on XOR problem

机译:具有非线性计算能力的单个树突神经元:以XOR问题为例

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Recently, a series of theoretical studies have conjectured that synaptic nonlinearities in a dendritic tree could make individual neurons act more powerfully in complex computational operations. Each of the neurons has quite distinct morphologies of synapses and dendrites to determine what signals a neuron receives and how these signals are integrated. However, there is no effective model that can captures the nonlinearities among excitatory and inhibitory inputs while predicting the morphology and its evolution of synapses and dendrites. In this paper, we propose a new single neuron model with synaptic nonlinearities in a dendritic tree. The computation on neuron has a neuron-pruning function that can reduce dimension by removing useless synapses and dendrites during learning, forming a precise synaptic and dendritic morphology. The nonlinear interactions in a dendrite tree are expressed using the Boolean logic AND (conjunction), OR (disjunction) and NOT (negation). An error back propagation algorithm is used to train the neuron model. Furthermore, we apply the new model to the Exclusive OR (XOR) problem and it can solve the problem perfectly with the help of inhibitory synapses which demonstrate synaptic nonlinear computation and the neuron's ability to learn.
机译:最近,一系列理论研究推测,树突树中的突触非线性可能使单个神经元在复杂的计算操作中发挥更强大的作用。每个神经元具有非常不同的突触和树突形态,以确定神经元接收什么信号以及如何整合这些信号。但是,没有有效的模型可以捕获兴奋性和抑制性输入之间的非线性,同时预测突触和树突的形态及其演化。在本文中,我们提出了一种新的树突状树中具有突触非线性的单神经元模型。对神经元的计算具有神经修剪功能,可以通过在学习过程中去除无用的突触和树突来缩小维度,从而形成精确的突触和树突形态。树状树中的非线性相互作用是使用布尔逻辑AND(合取),OR(合取)和NOT(取反)表示的。误差反向传播算法用于训练神经元模型。此外,我们将新模型应用于“异或”(XOR)问题,并且它可以在抑制性突触的帮助下完美解决该问题,这些抑制性突触表现出了突触的非线性计算和神经元的学习能力。

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