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首页> 外文期刊>Turkish Journal of Electrical Engineering and Computer Sciences >Impact of small-world topology on the performance of a feed-forward artificial neural network based on 2 different real-life problems
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Impact of small-world topology on the performance of a feed-forward artificial neural network based on 2 different real-life problems

机译:小世界拓扑对基于2种现实生活问题的前馈人工神经网络性能的影响

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Since feed-forward artificial neural networks (FFANNs) are the most widely used models to solve real-life problems, many studies have focused on improving their learning performances by changing the network architecture and learning algorithms. On the other hand, recently, small-world network topology has been shown to meet the characteristics of real-life problems. Therefore, in this study, instead of focusing on the performance of the conventional FFANNs, we investigated how real-life problems can be solved by a FFANN with small-world topology. Therefore, we considered 2 real-life problems: estimating the thermal performance of solar air collectors and predicting the modulus of rupture values of oriented strand boards. We used the FFANN with small-world topology to solve both problems and compared the results with those of a conventional FFANN with zero rewiring. In addition, we investigated whether there was statistically significant difference between the regular FFANN and small-world FFANN model. Our results show that there exists an optimal rewiring number within the small-world topology that warrants the best performance for both problems.
机译:由于前馈人工神经网络(FFANN)是解决现实生活问题的最广泛使用的模型,因此许多研究都致力于通过更改网络体系结构和学习算法来提高其学习性能。另一方面,最近,小世界网络拓扑已显示出可以满足现实生活中的问题的特征。因此,在这项研究中,我们没有关注传统FFANN的性能,而是研究了具有小世界拓扑结构的FFANN如何解决现实生活中的问题。因此,我们考虑了两个现实问题:估算太阳能集热器的热性能和预测定向刨花板的断裂模量。我们使用具有小世界拓扑的FFANN来解决这两个问题,并将结果与​​零布线的传统FFANN的结果进行了比较。此外,我们调查了常规FFANN模型和小世界FFANN模型之间在统计上是否存在显着差异。我们的结果表明,在小世界拓扑中存在一个最佳的重新布线数量,该数量保证了这两个问题的最佳性能。

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