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A Variable Node-to-Node-Link Neural Network and Its Application to Hand-Written Recognition

机译:可变节点到节点链接神经网络及其在手写识别中的应用

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This paper presents a variable node-to-node-link neural network (VN2NN) trained by real-coded genetic algorithm (RCGA). The VN2NN exhibits a node-to-node relationship in the hidden layer, and the network parameters are variable. These characteristics make the network adapt to the changes of the input environment, enable it to tackle different input sets distributed in a large domain. Each input data set is effectively handled by a corresponding set of network parameters. The set of parameters are governed by the other nodes. Taking the advantage of these features, the proposed network ensures better learning and generalization abilities. Application of the proposed network to hand-written graffiti recognition will be presented so as to illustrate the improvement.
机译:本文提出了一种用实编码遗传算法(RCGA)训练的可变节点到节点链接神经网络(VN 2 NN)。 VN 2 NN在隐藏层中具有节点到节点的关系,并且网络参数是可变的。这些特性使网络能够适应输入环境的变化,使其能够处理分布在大域中的不同输入集。每个输入数据集由一组相应的网络参数有效地处理。参数集由其他节点控制。利用这些功能,建议的网络可确保更好的学习和泛化能力。将介绍拟议的网络在手写涂鸦识别中的应用,以说明改进之处。

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