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I have several vectors of unequal length and I would like to cbind them. I've combined the vectors into a list and have tried the code below:

do.call(cbind, nm)

When I do this is works, but it throws me a warning:

"In function (..., deparse.level = 1)  :
  number of rows of result is not a multiple of vector length (arg 2)"

The resulting matrix is the size of the longest vector (as expected), but the values in the smaller vector repeats itself to make up for the length:

list:

[[1]]
[1] 1 2 3 4 5 6 7 8

[[2]]
[1] 3 4 5 6 7 8

[[3]]
[1] 1 2 3 4 5

resulting matrix:

     [,1] [,2] [,3]
[1,]    1    3    1

[2,]    2    4    2

[3,]    3    5    3

[4,]    4    6    4

[5,]    5    7    5

[6,]    6    8    1

[7,]    7    3    2

[8,]    8    4    3

I'd like to get NA values for the "extra" numbers if possible. I'd like the matrix to look like this:

     [,1] [,2] [,3]
[1,]    1    3    1

[2,]    2    4    2

[3,]    3    5    3

[4,]    4    6    4

[5,]    5    7    5

[6,]    6    8    NA

[7,]    7    NA    NA

[8,]    8    NA    NA

How can I go about doing this?

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flash of brilliance: nm <- cbind( z1, c(z2, rep(NA,length(z1)-length(z2))) ) –  Nick Apr 3 '11 at 18:17

3 Answers 3

You can use indexing, if you index a number beyond the size of the object it returns NA. This works for any arbitrary number of rows defined with foo:

nm <- list(1:8,3:8,1:5)

foo <- 8

sapply(nm,'[',1:foo)

EDIT:

Or in one line using the largest vector as number of rows:

sapply(nm,'[',seq(max(sapply(nm,length))))
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2  
what does '[' means !? –  user702846 Dec 1 '11 at 10:05
    
'[' is the name of the operator [ which you use in indexing (foo[1:10]). See also ?'[' –  Sacha Epskamp Dec 1 '11 at 10:09
    
The one line solution fails if the first column is shorter than the other two. –  bshor Jul 17 '12 at 19:35

This is a shorter version of Wojciech's solution.

nm <- list(1:8,3:8,1:5)
max_length <- max(sapply(nm,length))
sapply(nm, function(x){
    c(x, rep(NA, max_length - length(x)))
})
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1  
You are always better off using vapply rather than sapply because that will guarantee you get the output type that you expect. –  hadley Apr 4 '11 at 12:09

You should fill vectors with NA before calling do.call.

nm <- list(1:8,3:8,1:5)

max_length <- max(unlist(lapply(nm,length)))
nm_filled <- lapply(nm,function(x) {ans <- rep(NA,length=max_length);
                                    ans[1:length(x)]<- x;
                                    return(ans)})
do.call(cbind,nm_filled)
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