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Estimation of Stability Number of Rock Armor Using Artificial Neural Network Combined with Principal Component Analysis

机译:用人工神经网络与主成分分析相结合岩石铠装稳定性数

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In this paper, a hybrid artificial neural network (ANN) model is constructed to estimate the stability number of rock armor using the experimental data of Van der Meer (1988). Among the eleven input parameters in the experiment, the six parameters each of which is well distributed in a certain range are transformed into six principal components (PCs) by using a principal component analysis (PCA), which are then used as the input variables of the ANN. The remaining five parameters that vary among several different values (e.g. number of waves of 1000 or 3000) are directly used as the input variables of the ANN. Since the orthogonality of the PCs prevents the duplication of information by separating the variables into several independent components while maintaining the critical information in them, the hybrid ANN model combined with the PCA gives better results compared with the conventional ANN models.
机译:在本文中,构造了一种混合人工神经网络(ANN)模型来估计瓦德·梅尔(1988)的实验数据岩铠估算岩铠的稳定性数。在实验中的11个输入参数中,通过使用主成分分析(PCA)将各自在一定范围内分布良好分布的六个参数被转换为六个主组件(PCS),然后将其作为输入变量用作输入变量安娜。剩余的五个不同值(例如1000或3000的波浪数)的剩余五个参数被直接用作ANN的输入变量。由于PC的正交性通过将变量分成几个独立的组件来防止信息重复,同时保持其关键信息,与PCA相结合的混合ANN模型与传统的ANN模型相比提供了更好的结果。

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