five

Interpreting logit models

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DataCite Commons2024-03-01 更新2024-07-03 收录
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https://ageconsearch.umn.edu/record/340452
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The parameters of logit models are typically difficult to interpret, and the applied literature is replete with interpretive and computational mistakes. In this article, I review a menu of options to interpret the results of logistic regressions correctly and effectively using Stata. I consider marginal effects, partial effects, (contrasts of) predictive margins, elasticities, and odds and risk ratios. I also show that interaction terms are typically easier to interpret in practice than implied by the recent literature on this topic.
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2024-03-01
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