Evaluating the Statistical Significance of Models Developed by Stepwise Regression
Information for evaluating the statistical significance of stepwise regression models developed with a forward selection procedure is presented. Cumulative distributions of the adjusted coefficient of determination (R²) under the null hypothesis of no relationship between the dependent variable and...
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1983
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sg-smu-ink.lkcsb_research-33142019-10-07T03:48:21Z Evaluating the Statistical Significance of Models Developed by Stepwise Regression McIntyre, Shelby H. Montgomery, David B. Srinivasan, V. Weitz, Baron A. Information for evaluating the statistical significance of stepwise regression models developed with a forward selection procedure is presented. Cumulative distributions of the adjusted coefficient of determination (R²) under the null hypothesis of no relationship between the dependent variable and m potential independent variables are derived from a Monté Carlo simulation study. The study design included sample sizes of 25, 50, and 100, available independent variables of 10, 20, and 40, and three criteria for including variables in the regression model. The results reveal that the biases involved in testing statistical significance by two well-known rules are very large, thus demonstrating the desirability of using the Monté Carlo cumulative R² distributions developed by the authors. Although the results were derived under the assumption of uncorrelated predictors, the authors show that the results continue to be useful for the correlated predictor case. 1983-02-01T08:00:00Z text https://ink.library.smu.edu.sg/lkcsb_research/2315 info:doi/10.2307/3151406 https://doi.org/10.2307/3151406 Research Collection Lee Kong Chian School Of Business eng Institutional Knowledge at Singapore Management University Business Management Sciences and Quantitative Methods |
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Business Management Sciences and Quantitative Methods McIntyre, Shelby H. Montgomery, David B. Srinivasan, V. Weitz, Baron A. Evaluating the Statistical Significance of Models Developed by Stepwise Regression |
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Information for evaluating the statistical significance of stepwise regression models developed with a forward selection procedure is presented. Cumulative distributions of the adjusted coefficient of determination (R²) under the null hypothesis of no relationship between the dependent variable and m potential independent variables are derived from a Monté Carlo simulation study. The study design included sample sizes of 25, 50, and 100, available independent variables of 10, 20, and 40, and three criteria for including variables in the regression model. The results reveal that the biases involved in testing statistical significance by two well-known rules are very large, thus demonstrating the desirability of using the Monté Carlo cumulative R² distributions developed by the authors. Although the results were derived under the assumption of uncorrelated predictors, the authors show that the results continue to be useful for the correlated predictor case. |
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text |
author |
McIntyre, Shelby H. Montgomery, David B. Srinivasan, V. Weitz, Baron A. |
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McIntyre, Shelby H. Montgomery, David B. Srinivasan, V. Weitz, Baron A. |
author_sort |
McIntyre, Shelby H. |
title |
Evaluating the Statistical Significance of Models Developed by Stepwise Regression |
title_short |
Evaluating the Statistical Significance of Models Developed by Stepwise Regression |
title_full |
Evaluating the Statistical Significance of Models Developed by Stepwise Regression |
title_fullStr |
Evaluating the Statistical Significance of Models Developed by Stepwise Regression |
title_full_unstemmed |
Evaluating the Statistical Significance of Models Developed by Stepwise Regression |
title_sort |
evaluating the statistical significance of models developed by stepwise regression |
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Institutional Knowledge at Singapore Management University |
publishDate |
1983 |
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https://ink.library.smu.edu.sg/lkcsb_research/2315 https://doi.org/10.2307/3151406 |
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1770570210818916352 |