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In R, we can use model.matrix() to construct design matrices, for example,

grp.ids = as.factor(c(rep(1,8), rep(2,4), rep(3,2)))
x = model.matrix(~grp.ids)

gives the design matrix x:

   (Intercept) grp.ids2 grp.ids3
1            1        0        0
2            1        0        0
3            1        0        0
4            1        0        0
5            1        0        0
6            1        0        0
7            1        0        0
8            1        0        0
9            1        1        0
10           1        1        0
11           1        1        0
12           1        1        0
13           1        0        1
14           1        0        1
attr(,"assign")
[1] 0 1 1
attr(,"contrasts")
attr(,"contrasts")$grp.ids
[1] "contr.treatment"

However, if now I am given a design matrix x as above, and hope to get the "grouping vector" grp.ids by somehow manipulating on x. How can I do that? Thanks!

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1 Answer 1

up vote 3 down vote accepted

I don't believe you could recover grp.id exactly as it was originally created because it's not possible to tell what the original values of the ids were. You can create a vector that results in the same model.maxtrix though.

factor(apply(x, 1, paste, collapse = "."), labels = seq(ncol(x)))

However, this gets pretty close in this particular case.


The labels for the previous one give the order of 1, 3, 2 (instead of the desired 1, 2, 3) and that is because we get "1.0.0", "1.1.0", "1.0.1" as our actual output and sorted alphanumerically these give the order 1, 3, 2. If we reversed the input string so we had "0.0.1", "0.1.1" and "1.0.1" then this would give the desired order so the following should work

factor(apply(x, 1, function(x){paste(rev(x), collapse = ".")}), labels = seq(ncol(x)))
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thank you for the solution! I think it doesn't matter what number is used for each group since they're just levels of factors :) –  alittleboy Nov 17 '12 at 23:05
    
BTW, is there any way to let the levels in increasing order? I currently have 1,3,2, but hope to get 1,2,3. In that way, when I reconstruct the model.matrix, I can get identical result. Thanks. –  alittleboy Nov 17 '12 at 23:07
1  
@alittleboy Added an update for you –  Dason Nov 17 '12 at 23:34
    
that works perfectly and thanks again for the details! –  alittleboy Nov 18 '12 at 3:19

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