Dear all,
I have studied all possible resources on how to deal with interaction terms and variables created as a function of other missing variables in MI.
Apparently, there is no consensus on this topic and discussions are still ongoing. I am here seeking your latest opinion on this topic.
In summary, there are around 4 ways to deal with interactions.
If I am able to use any of these approaches, which one would you recommand based on your experience on this topic?
Second, for variables created as a function of other variables, I found 2 opposing opinions here by Clyde Schechter and Richard Williams.
I have health scores that are created as a function of different other items. So, should I include both scores and items in the imputation model (JAV approach) or should I create the scores from imputed items (passive approach)?
Thank you so much for any remarks on these two questions.
I have studied all possible resources on how to deal with interaction terms and variables created as a function of other missing variables in MI.
Apparently, there is no consensus on this topic and discussions are still ongoing. I am here seeking your latest opinion on this topic.
In summary, there are around 4 ways to deal with interactions.
- Passive approach: apparetly everyone is against this
- JAV approach: preferable if the missing two variables used for the interaction are continuous only, right?
- Impute datasets separately for each group if you have 1 variable used for the interaction that is binary/categorical and is not missing
- Use the include() option. I was not aware of this way of doing things, but I saw that daniel klein has suggested it in this post.
If I am able to use any of these approaches, which one would you recommand based on your experience on this topic?
Second, for variables created as a function of other variables, I found 2 opposing opinions here by Clyde Schechter and Richard Williams.
I have health scores that are created as a function of different other items. So, should I include both scores and items in the imputation model (JAV approach) or should I create the scores from imputed items (passive approach)?
Thank you so much for any remarks on these two questions.
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