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A Method to Extract Feature Variables Contributed in Nonlinear Machine Learning Prediction

机译:一种提取在非线性机器学习预测中的特征变量的方法

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摘要

Although advances in prediction accuracy have been made with new machine learning methods, such as support vector machines and deep neural networks, these methods make nonlinear machine learning models and thus lack the ability to explain the basis of their predictions. Improving their explanatory capabilities would increase the reliability of their predictions.

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