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Effects of the number of hidden nodes used in a structured-based neural network on the reliability of image classification

机译:基于结构的神经网络中隐藏节点的数量对图像分类可靠性的影响

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摘要

A structured-based neural network (NN) with backpropagation through structure (BPTS) algorithm is conducted for image classification in organizing a large image database, which is a challenging problem under investigation. Many factors can affect the results of image classification. One of the most important factors is the architecture of a NN, which consists of input layer, hidden layer and output layer. In this study, only the numbers of nodes in hidden layer (hidden nodes) of a NN are considered. Other factors are kept unchanged. Two groups of experiments including 2,940 images in each group are used for the analysis. The assessment of the effects for the first group is carried out with features described by image intensities, and, the second group uses features described by wavelet coefficients. Experimental results demonstrate that the effects of the numbers of hidden nodes on the reliability of classification are significant and non-linear. When the number of hidden nodes is 17, the classification rate on training set is up to 95%, and arrives at 90% on the testing set. The results indicate that 17 is an appropriate choice for the number of hidden nodes for the image classification when a structured-based NN with BPTS algorithm is applied.
机译:为了组织大型图像数据库中的图像分类,进行了带有结构反向传播(BPTS)算法的基于结构的神经网络(NN),这是一个有挑战性的问题。许多因素都会影响图像分类的结果。 NN的体系结构是最重要的因素之一,它由输入层,隐藏层和输出层组成。在这项研究中,仅考虑了NN的隐藏层(隐藏节点)中的节点数。其他因素保持不变。使用两组实验,每组包括2,940张图像进行分析。第一组效果的评估是通过图像强度描述的特征进行的,第二组效果使用小波系数描述的特征。实验结果表明,隐藏节点数对分类可靠性的影响是显着的并且是非线性的。当隐藏节点数为17时,训练集的分类率高达95%,而测试集的分类率达到90%。结果表明,当应用带有BPTS算法的基于结构化的NN时,对于图像分类的隐藏节点数,17是一个合适的选择。

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