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Here is the problem that I'm trying to solve. I'm using burn dataset from KMsurv library and I'm trying to fit a simple survival model with two simple covariates. One of these predictors is an ordered factor. Perhaps my question is a naive question, When I look at the result, I see the words L and Q in front of my estimated coefficients. Do L and Q refer to linear and quadratic? I expected to see the same number of estimated coefficients but with different estimates when I adjusted an ordered factor compared to adjusting the same factor which is not ordered. Could you guide me on what the result of my fit means (those coeff with Q and L) and how they should be interpreted? I appreciate if you could also refer me to a reference to learn more about adjusting ordered factors. Here is my code:

library(KMsurv)
data(burn)
names(burn) <- c("Obs", "TRT", "Female", "White", "SurfBurned", "HeadBurned",
"buttBurned", "TrunkBurned", "UpperLegBurned", "LowerLegBurned", "resp", 
"BurnType", "ExcisionTime", "ExcisionDelta", "prophylacticTime",
"ProphylacticDelta", "straphylInfTime", "straphylInfDelta")

burn$SurfBurned_cat <- factor(cut(burn$SurfBurned, c(0, 10, 25, 100), 
labels = c("low", "medium", "high")),  

levels = c("low", "medium", "high"), ordered = TRUE)
Q4PcCoxModel <- coxph(Surv(straphylInfTime, straphylInfDelta) ~
                       TRT*SurfBurned_cat, 
                      data = burn)
summary(Q4PcCoxModel)

Thanks for your help.

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What is burn$SurfBurned. The column does not appear to exist, actually, none of the columns you refer to exist in burn –  mnel Oct 30 '12 at 3:53
6  
for ordered factors R generates orthogonal polynomial contrasts, using contr.poly. L and Q do indeed refer to "linear" and "quadratic" ... –  Ben Bolker Oct 30 '12 at 4:10
    
Oh, sorry, I renamed the columns and I forgot to put that in here. Just edited! –  Sepehr Oct 30 '12 at 4:47
    
I appreciate your answer, @BenBolker. –  Sepehr Oct 30 '12 at 5:12
1  
I found this webpage (section 4 specifically) quite useful in working out what R was doing with my ordered factors. ats.ucla.edu/stat/r/library/contrast_coding.htm –  Adam Kimberley Dec 13 '12 at 17:52

1 Answer 1

If you wish to use treatment contrasts for ordered factors, you can set this globally using this command options(contrasts = c("contr.treatment", "contr.treatment")). However, your expectation is incorrect:

I expected to see the same number of estimated coefficients but with different estimates when I adjusted an ordered factor compared to adjusting the same factor which is not ordered.

Adjusting for an ordered factor using treatment contrasts will give you the same estimates as adjusting for a for an unordered factor using treatment contrasts.

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