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The following R code generates a snippet from data frame I am working with at the moment:

rep1 <- c("20/02/01","23/03/02")
rep2 <- c(NA, "03/05/02")
rep3 <- c("16/04/01",NA)
rep4 <- c(NA,"12/02/03")
data <- data.frame(rep1 = rep1, rep2 = rep2, rep3 = rep3, rep4 = rep4)

The data frame generated by the code looks like this:

      rep1     rep2     rep3     rep4
1 20/02/01     <NA> 16/04/01     <NA>
2 23/03/02 03/05/02     <NA> 12/02/03

I would like to rearrange this data frame so it looks like this:

      rep1     rep2   rep3     rep4
1 20/02/01 16/04/01    <NA>     <NA>
2 23/03/02 03/05/02   12/02/03   <NA> 

That is, for every row I would like to replace every NA with the next entry in the row, untill there are only NAs left in the row.

The true data frame consists of many thousand rows, so doing this by hand would mean many late hours in the office.

If anyone could tell me how to do this in R, I would be most grateful!

Thomas

share|improve this question
    
Could you, please, be more thorough? Give us few more rows in dataset, so we can see what is it about. –  aL3xa Aug 28 '10 at 20:13
    
Of course, sorry for being imprecise! I have added some R code that generate a small sample data frame that looks like the one I am working with. –  Thomas Jensen Aug 28 '10 at 20:39

2 Answers 2

up vote 1 down vote accepted

I'm not sure I understand, but it seems you want to move the NA's to the end columns? Here is one way (done quickly; there may be a cleaner way):

> d <- data.frame(rbind(c(1, 2, NA, 4, NA, 6), c(NA, 2, 3, 4, 5, 6)))
> d
  X1 X2 X3 X4 X5 X6
1  1  2 NA  4 NA  6
2 NA  2  3  4  5  6
> t(apply(d, 1, function(x) c(x[!is.na(x)], rep(NA, sum(is.na(x))))))
     [,1] [,2] [,3] [,4] [,5] [,6]
[1,]    1    2    4    6   NA   NA
[2,]    2    3    4    5    6   NA

On your data:

> t(apply(data, 1, function(x) c(x[!is.na(x)], rep(NA, sum(is.na(x))))))
     [,1]       [,2]       [,3]       [,4]
[1,] "20/02/01" "16/04/01" NA         NA  
[2,] "23/03/02" "03/05/02" "12/02/03" NA  
share|improve this answer
    
Thanks Vince, I have specified the question a bit more, but this was exactly what I was after! –  Thomas Jensen Aug 28 '10 at 20:48
1  
When applied on vectors, rbind returns object of class matrix, so there's no need to convert it to data.frame in order to do run apply over it, because apply will return matrix when run on the data.frame. Try t(apply(data, 1, sort, na.last = TRUE)) if you want to sort the values... –  aL3xa Aug 28 '10 at 22:11
    
A dataframe was used intentionally, as that is what the OP's problem begins with. –  Vince Aug 28 '10 at 22:43
    
Oh, right... =) Self-handicapping moments strike again! –  aL3xa Aug 29 '10 at 0:55

Following Vince's suggestion, but perhaps a little cleaner:

t(apply(d, 1, function(x) x[order(x)]))
share|improve this answer
1  
This will change original order. But if you do t(apply(data, 1, function(x) x[order(is.na(x))])) then should be ok. –  Marek Aug 30 '10 at 8:32

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