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Influence of graphical weights’ interpretation and filtration algorithms on generalization ability of neural networks applied to digit recognition

机译:图形权重的解释和过滤算法对应用于数字识别的神经网络泛化能力的影响

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摘要

In this paper, the method of the graphical interpretation of the single-layer network weights is introduced. It is shown that the network parameters can be converted to the image and their particular elements are the pixels. For this purpose, weight-to-pixel conversion formula is used. Moreover, new weights’ modification method is proposed. The weight coefficients are computed on the basis of pixel values for which image filtration algorithms are implemented. The approach is applied to the weights of three types of the models: single-layer network, two-layer backpropagation network and the hybrid network. The performance of the models is then compared on two independent data sets. By means of the experiments, it is presented that the adjustment of the weights to new values decreases test error value compared to the error obtained for initial set of weights.
机译:本文介绍了单层网络权重的图形化解释方法。结果表明,网络参数可以转换为图像,其特定元素是像素。为此,使用了权重像素转换公式。此外,提出了新的权重修改方法。加权系数是基于像素值计算的,针对这些像素值实施了图像过滤算法。该方法适用于三种类型的模型的权重:单层网络,两层反向传播网络和混合网络。然后在两个独立的数据集上比较模型的性能。通过实验表明,将权重调整为新值与初始权重集获得的误差相比降低了测试误差值。

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