Criterion for Evaluating the Predictive Ability of Nonlinear Regression Models without Cross-Validation

被引:15
|
作者
Kaneko, Hiromasa [1 ]
Funatsu, Kimito [1 ]
机构
[1] Univ Tokyo, Dept Chem Syst Engn, Bunkyo Ku, Tokyo 1138656, Japan
基金
日本学术振兴会;
关键词
REAL EXTERNAL PREDICTIVITY; VARIABLE-SELECTION; QSAR MODELS;
D O I
10.1021/ci4003766
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
We propose predictive performance criteria for nonlinear regression models without cross-validation. The proposed criteria are the determination coefficient and the root-mean-square error for the midpoints between k-nearest-neighbor data points. These criteria can be used to evaluate predictive ability after the regression models are updated, whereas cross-validation cannot be performed in such a situation. The proposed method is effective and helpful in handling big data when cross-validation cannot be applied. By analyzing data from numerical simulations and quantitative structural relationships, we confirm that the proposed criteria enable the predictive ability of the nonlinear regression models to be appropriately quantified.
引用
收藏
页码:2341 / 2348
页数:8
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