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.

I have a dataframe with 3 columns- L1, L2, L3- of data and empty columns labeled L1+L2, L2+L3, L3+L1, L1-L2, etc. combinations of column operations. Is there a way to check the column name and perform the necessary operation to fill that new column with data?

I am thinking: -use match to find the appropriate original columns and using a for loop to iterate over all of the columns in this search? so if the column I am attempting to fill is L1+L2 I would have something like: apply(dataframe[,c(i, j), 1, sum)

share|improve this question
    
you can use strsplit –  Metrics Aug 13 '13 at 18:23

2 Answers 2

up vote 3 down vote accepted

It seems strange that you would store your operations in your column names, but I suppose it is possible to achieve:

As always, sample data helps.

## Creating some sample data
mydf <- setNames(data.frame(matrix(1:9, ncol = 3)), 
                 c("L1", "L2", "L3"))

## The operation you want to do...
morecols <- c(
  combn(names(mydf), 2, FUN=function(x) paste(x, collapse = "+")),
  combn(names(mydf), 2, FUN=function(x) paste(x, collapse = "-"))
)

## THE FINAL SAMPLE DATA
mydf[, morecols] <- NA
mydf
#   L1 L2 L3 L1+L2 L1+L3 L2+L3 L1-L2 L1-L3 L2-L3
# 1  1  4  7    NA    NA    NA    NA    NA    NA
# 2  2  5  8    NA    NA    NA    NA    NA    NA
# 3  3  6  9    NA    NA    NA    NA    NA    NA

One solution could be to use eval(parse(...)) within lapply to perform the calculations and store them to the relevant column.

mydf[morecols] <- lapply(names(mydf[morecols]), function(x) {
  with(mydf, eval(parse(text = x)))
})
mydf
#   L1 L2 L3 L1+L2 L1+L3 L2+L3 L1-L2 L1-L3 L2-L3
# 1  1  4  7     5     8    11    -3    -6    -3
# 2  2  5  8     7    10    13    -3    -6    -3
# 3  3  6  9     9    12    15    -3    -6    -3
share|improve this answer
    
Wow thanks! Quick question about the syntax- so eval evaluates expressions only, so you are using parse to create an expression from a string? –  user2631296 Aug 13 '13 at 18:34
    
@user2631296, Pretty much. The output of parse is an expression, but it is not evaluated, hence the need for eval. –  Ananda Mahto Aug 13 '13 at 18:37
    
Ah okay understood. –  user2631296 Aug 13 '13 at 18:39
dfrm <- data.frame( L1=1:3, L2=1:3, L3=3+1,  `L1+L2`=NA, 
                   `L2+L3`=NA, `L3+L1`=NA, `L1-L2`=NA, 
                    check.names=FALSE)
dfrm
#------------
  L1 L2 L3 L1+L2 L2+L3 L3+L1 L1-L2
1  1  1  4    NA    NA    NA    NA
2  2  2  4    NA    NA    NA    NA
3  3  3  4    NA    NA    NA    NA
#-------------
 dfrm[, 4:7] <- lapply(names(dfrm[, 4:7]), 
                       function(nam) eval(parse(text=nam), envir=dfrm) )
 dfrm
#-----------
  L1 L2 L3 L1+L2 L2+L3 L3+L1 L1-L2
1  1  1  4     2     5     5     0
2  2  2  4     4     6     6     0
3  3  3  4     6     7     7     0

I chose to use eval(parse(text=...)) rather than with, since the use of with is specifically cautioned against in its help page. I'm not sure I can explain why the eval(..., target_dfrm) form should be any safer, though.

share|improve this answer

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.