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Accuracy (ACC), AUC, false positive rate (FPR), and false negative rate (FNR) are obtained using supervised (logistic regression) and unsupervised (Gaussian mixture modeling) classification.

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Figshare2020-04-03 更新2026-04-28 收录
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https://figshare.com/articles/dataset/Accuracy_ACC_AUC_false_positive_rate_FPR_and_false_negative_rate_FNR_are_obtained_using_supervised_logistic_regression_and_unsupervised_Gaussian_mixture_modeling_classification_/12079395
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All metrics are based on a probability of 0.5 classification threshold. Columns contain tables for clustering using the first canonical correlation variable and first n = 1, 2 principle components from the 9 questionnaires. Raw ordinal scores are used for comparison. Results are grouped into two column groups: the left group contains clustering comparing C vs. CS, the left group shows CC vs. S. Results for logistic regression are the mean of a 10-fold across-validation analysis.
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2020-04-03
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