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Predicting Depression Among Community Residing Older Adults: A Use of MachineLearning Approch

机译:预测社区居住老年人的抑郁症:使用机器学习方法的使用

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The study demonstrated an application of machine learning techniques in building a depression prediction model. We used the NSHAP II data (3,377 subjects and 261 variables) and built the models using a logistic regression with and without LI regularization. Depression prediction rates ranged 58.33% to 90.48% and 83.33% to 90.44% in the model with and without LI regularization, respectively. The moderate to high prediction rates imply that the machine learning algorithms built the prediction models successfully.
机译:该研究表明了机器学习技术在构建凹陷预测模型方面的应用。我们使用NShap II数据(3,377个科目和261个变量),并使用具有锂正则化的Logistic回归建立模型。凹陷预测率分别在模型中分别与李正则化的模型范围为58.33%至90.48%和83.33%至90.44%。中等至高预测率意味着机器学习算法成功构建了预测模型。

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