应用级联泛化和神经网络选择疣体冷冻治疗方法

P. Kraipeerapun, S. Amornsamankul
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引用次数: 5

摘要

本文将互补神经网络应用于级联泛化。互补神经网络包括两个神经网络训练来预测真值和假值。本文实现了两级联泛化。提出了两种方法。首先,神经网络在基层进行训练,而互补神经网络在级联泛化的元层进行训练。其次,在级联泛化的两个层次上训练互补神经网络。所提出的方法用于选择疣的冷冻治疗方法。冷冻治疗数据集来自UCI机器学习存储库。实验采用十重交叉验证。该方法的准确率为98.89%,高于现有的级联泛化和堆叠泛化方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using Cascade Generalization and Neural Networks to Select Cryotherapy method for Warts
In this paper, complementary neural networks are applied to cascade generalization. Complementary neural networks comprise two neural networks trained to predict truth and falsity values. Two levels of cascade generalization are implemented in this paper. Two approaches are proposed. First, a neural network is trained in the base level whereas complementary neural networks are trained in meta level of cascade generalization. Second, complementary neural networks are trained in both levels of cascade generalization. The proposed methods are used to select cryotherapy method for wart treatment. The cryotherapy data set is obtained from UCI machine learning repository. Ten-fold cross validation is used in the experiment. The proposed approach gives 98.89% accuracy which higher than the existing methods which are cascade generalization and stacked generalization.
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