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On a related theme [[attachment:jaeger.pdf | this article]] by Jaeger suggests using logit models as opposed to the arcsine transformation when analyzing proportions in ANOVAs. On a related theme [[attachment:jaeger.pdf | this research report]] by Jaeger suggests using logit models as opposed to the arcsine transformation when analyzing proportions in ANOVAs.

Linear regression as an alternative to logistic regression

Hellevik (2009) suggests that linear regression can be used with a binary outcome as opposed to logistic regression particularly for large samples. Heterogeneity of variance (where the variance of the proportions depends on the proportion) could which is not taken into account by ordinary linear regression could, however, lead to problems with inference.

On a related theme this research report by Jaeger suggests using logit models as opposed to the arcsine transformation when analyzing proportions in ANOVAs.

Reference

Hellevik, O. (2009) Linear versus logistic regression when the dependent variable is a dichotomy. Qual Quant 43 59-74.

None: FAQ/OLSvML (last edited 2022-05-09 11:08:43 by PeterWatson)