As the title says, I have a logistic regression model with a negative adjusted R2 (McFadden's), but my main predictor variable is statistically significant. This is true for the basic model that only includes x and y as well as for models that include multiple predictors.
Is it sound to conclude that x is associated with y even though my model does not fit according to the adjusted R2? Or does poor model fit mean that the statistically significant coefficients are not meaningful?
Thanks!
Is it sound to conclude that x is associated with y even though my model does not fit according to the adjusted R2? Or does poor model fit mean that the statistically significant coefficients are not meaningful?
Thanks!
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