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.

For example, given the data frames:

> df1
  a b
1 1 3
2 2 4

and

> df2
   x  y  z
1 10 12 14
2 11 13 15

and doing an addition operation on each pairing of columns from df1 and df2, I would like to produce:

> df3
  ax bx ay by az bz
1 11 13 13 15 15 17
2 13 15 15 17 17 19

I wrote the following code which does the job, but I'm wondering if there is a nicer way to do it.

df1 <- data.frame(a=1:2, b=3:4)
df2 <- data.frame(x=10:11, y=12:13, z=14:15)

byColumnAdditionAllPairs <- function(df1, df2) {

    doOp <- function(x, df1, df2, pairs) { 
        i <- pairs[x,1]; # ith column of df1
        j <- pairs[x,2]; # jth column of df2

        # add paired columns
        tmp <- df1[i] + df2[j];

        # set new column name
        names(tmp)[1] <- paste(names(df1)[i], names(df2)[j], sep="");

        # return column
        tmp
    }

    # generate column pairings
    pairs <- expand.grid(1:length(df1), 1:length(df2))

    # for each column pair, doOp
    data.frame(sapply(1:nrow(pairs), doOp, df1, df2, pairs))
}

df3 <- byColumnAdditionAllPairs(df1, df2)

Thanks, Zach

share|improve this question
    
didn't have time to really think through this, but outer() may be useful –  Chase Jun 21 '11 at 14:11

4 Answers 4

up vote 5 down vote accepted

Here's one way. It has elements of some of the other answers...

z <- outer(colnames(df1), colnames(df2), function(c1,c2) df1[,c1] + df2[,c2])
colnames(z) <- outer(colnames(df1), colnames(df2), paste, sep = '')     

> z
  ax bx ay by az bz
1 11 13 13 15 15 17
2 13 15 15 17 17 19
share|improve this answer
    
That's the one. Much nicer way to do it. Thanks. –  Zach Jun 21 '11 at 15:01

Get all the names of the pairs of columns using expand.grid.

col_pairs <- expand.grid(colnames(df1), colnames(df2))

Now apply your addition function

col_sums <- apply(col_pairs, 1L, function(x) df1[, x["Var1"]] + df2[, x["Var2"]])

Fix up the column names

col_names <- apply(col_pairs, 1L, function(x) paste(x, collapse = ""))
colnames(col_sums) <- col_names
share|improve this answer
    
Thanks, definitely more succinct than my approach, but not quite there. –  Zach Jun 21 '11 at 15:00
comb <- as.vector(outer(names(df1),names(df2),paste))
df3 <- data.frame(sapply(comb,function(x) df1[strsplit(x," ")[[1]][1]]+df2[strsplit(x," ")[[1]][2]]))  
names(df3) <- gsub(" ","",comb)

Which gives:

> df3
  ax bx ay by az bz
1 11 13 13 15 15 17
2 13 15 15 17 17 19
share|improve this answer
    
Short and sweet, but the string manipulation feels a bit kludgy. –  Zach Jun 21 '11 at 15:02

A slightly different approach is using outer():

df1 <- data.frame(a = 1:2, b = 3:4)
df2 <- data.frame(x = 10:11, y = 12:13, z = 14:15)
m1 <- data.matrix(df1)
m2 <- data.matrix(df2)
t(sapply(1:2, function(x, m1, m2) outer(m1[x,], m2[x,], "+"), m1 = m1, m2 = m2))

which gives:

> t(sapply(1:2, function(x, m1, m2) outer(m1[x,], m2[x,], "+"), m1 = m1, m2 = m2))
     [,1] [,2] [,3] [,4] [,5] [,6]
[1,]   11   13   13   15   15   17
[2,]   13   15   15   17   17   19
share|improve this answer
1  
you could just do outer(colnames(df1), colnames(df2), function(c1,c2) df1[,c1] + df2[,c2]) -- to get everything except the (dang) column names –  Prasad Chalasani Jun 21 '11 at 14:44
    
@Prasad good point, but the column names are easy to get and the rownames are easy. –  Gavin Simpson Jun 21 '11 at 14:52
    
apply(expand.grid(names(df1), names(df2)), 1, function(x) paste(x[1], x[2], sep = "")) gets the column names and there are probably easier ways. –  Gavin Simpson Jun 21 '11 at 14:52
    
I like this approach. df3 <- data.frame(outer(colnames(df1), colnames(df2), function(c1,c2) df1[,c1] + df2[,c2])) names(df3) <- as.vector(outer(names(df1),names(df2),paste,sep="")) Thanks –  Zach Jun 21 '11 at 14:56

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.