Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Here is (a small part of) a data frame "df" with :

11 variables "v1" to "v11"

and an index column "indx" (with 1 <= indx <= 11).

"indx" was obtained through a previous step on another data frame and was then merged to "df" :

> df
    v1 v2  v3  v4  v5 v6  v7 v8 v9 v10 v11 indx
1  223  0  95 605  95  0   0  0  0 189   0   10
2   32  0   0  32   0 26   0  0  0  32   0    6
3    0  0 127  95  64 32   0  0  0 350   0   10
4  141  0 188   0 361  0   0  0  0 145   0    3
5   32  0 183   0 127  0   0  0  0 246   0    3
6   67  0 562   0   0  0   0  0  0 173   0    3
7   64  0 898   0   6  0   0  0  0   0   0    3
8    0  0  16   0  32  0   0  0  0  55   0   10
9    0  0 165   0   0  0 312  0  0 190   0   10
10   0  0 210   0   0  0 190  0  0  11   0    7

I need to build a new column "vsel" which value is "v(indx)"

(that is, for the 1rst row : vsel=189 because indx=10 and v10=189)

I successfully obtained this result by using a "for" loop :

> df
    v1 v2  v3  v4  v5 v6  v7 v8 v9 v10 v11 indx vsel
1  223  0  95 605  95  0   0  0  0 189   0   10  189
2   32  0   0  32   0 26   0  0  0  32   0    6   26
3    0  0 127  95  64 32   0  0  0 350   0   10  350
4  141  0 188   0 361  0   0  0  0 145   0    3  188
5   32  0 183   0 127  0   0  0  0 246   0    3  183
6   67  0 562   0   0  0   0  0  0 173   0    3  562
7   64  0 898   0   6  0   0  0  0   0   0    3  898
8    0  0  16   0  32  0   0  0  0  55   0   10   55
9    0  0 165   0   0  0 312  0  0 190   0   10  190
10   0  0 210   0   0  0 190  0  0  11   0    7  190

The code is :

df$vsel = NA
for (i in seq(1:nrow(df))   )
{
  r = df[i,]
  ind = r$indx
  df[i,"vsel"] = r[ind]
}

... I would like to avoid this loop (as it is rather slow when the data frame is big).

There is probably a (faster) R-type way :

maybe with apply(df, 1, ...) ?

or ddply ?

Thanks for any help …

share|improve this question

3 Answers 3

Matrix indexing to the rescue! R has a way of doing exactly what you are describing. It is simple and powerful but surprisingly little-known.

df$vsel <- df[cbind(1:nrow(df), df$indx)]
share|improve this answer
    
this is amazing ! do you have a link to further instructions for this command ? –  cafe876 Aug 3 '12 at 14:31
    
Run ?"[" to get the help page. This was indeed a usefull tip, I didn't know [ could do that. –  Backlin Aug 3 '12 at 15:14

You can do that :

f <- function(i){df[i,df[i,]$indx]}
temp <- sapply(FUN=f,X=1:length(df[,1]))
cbind(df,vsel=temp)
share|improve this answer

Here's a fully vectorized solution that is hard to beat in terms of speed.

df$vsel <- as.matrix(df)[1:nrow(df) + nrow(df)*(df$indx-1)]

This utilizes the fact that a matrix is internally stored as a long vector (column wise). The 1:nrow(df) will thereby specify row and nrow(df)*(df$indx-1) column. This does not work if you have mixed data types in df as everything would then be turned into strings by as.matrix.

share|improve this answer
    
All 3 answers are going very well ! Thanks very much to all of you. –  Phil Aug 3 '12 at 15:00

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.