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This came up just in an answer to another question here. When you rbind two data frames, it matches columns by name rather than index, which can lead to unexpected behavior:

> df<-data.frame(x=1:2,y=3:4)
> df
  x y
1 1 3
2 2 4
> rbind(df,df[,2:1])
  x y
1 1 3
2 2 4
3 1 3
4 2 4

Of course, there are workarounds. For example:

rbind(df,rename(df[,2:1],names(df)))
data.frame(rbind(as.matrix(df),as.matrix(df[,2:1])))

On edit: rename from the plyr package doesn't actually work this way (although I thought I had it working when I originally wrote this...). The way to do this by renaming is to use SimonO101's solution:

rbind(df,setNames(df[,2:1],names(df)))

Also, maybe surprisingly,

data.frame(rbindlist(list(df,df[,2:1])))

works by index (and if we don't mind a data table, then it's pretty concise), so this is a difference between do.call(rbind).

The question is, what is the most concise way to rbind two data frames where the names don't match? I know this seems trivial, but this kind of thing can end up cluttering code. And I don't want to have to write a new function called rbindByIndex. Ideally it would be something like rbind(df,df[,2:1],byIndex=T).

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2  
Interesting. Though personally I'd rather that rbind on dataframes take the care to match named subsets (i.e. columns). When you don't want to "track" things by name, use matrix in the first place? –  Carl Witthoft Oct 10 '13 at 13:56
    
One (maybe the only) reason not to use matrix is because it doesn't allow mixing of types. –  mrip Oct 10 '13 at 14:13

2 Answers 2

up vote 11 down vote accepted

You might find setNames handy here...

rbind( df , setNames( rev(df) , names( df ) ) )
#  x y
#1 1 3
#2 2 4
#3 3 1
#4 4 2

I suspect your real use-case is somewhat more complex. You can of course reorder columns in the first argument of setNames as you wish, just use names( df ) in the second argument, so that the names of the reordered columns match the original.

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+1 Nice. I wish I'd known about this before. –  Thomas Oct 10 '13 at 14:04
    
Thanks, I had been using rename from the plyr package, and now when I try rerunning my code from the OP, it doesn't work. –  mrip Oct 10 '13 at 14:06
    
@Thomas yeah it's a really handy little function! –  Simon O'Hanlon Oct 10 '13 at 14:07
    
@mrip well I hope this is useful for your real use-case! –  Simon O'Hanlon Oct 10 '13 at 14:07
    
@SimonO101 I like the simplicity of the code inside setNames. –  Roland Oct 10 '13 at 14:10

This seems pretty easy:

mapply(c,df,df[,2:1])
     x y
[1,] 1 3
[2,] 2 4
[3,] 3 1
[4,] 4 2

For this simple case, though, you have to turn it back into a dataframe (because mapply simplifies it to a matrix):

as.data.frame(mapply(c,df,df[,2:1]))
  x y
1 1 3
2 2 4
3 3 1
4 4 2

Important note 1: There appears to be a downside of type coercion when your dataframe contains vectors of different types:

df<-data.frame(x=1:2,y=3:4,z=c('a','b'))
mapply(c,df,df[,c(2:1,3)])
     x y z
[1,] 1 3 2
[2,] 2 4 1
[3,] 3 1 2
[4,] 4 2 1

Important note 2: It also is terrible if you have factors.

df<-data.frame(x=factor(1:2),y=factor(3:4))
mapply(c,df[,1:2],df[,2:1])
     x y
[1,] 1 1
[2,] 2 2
[3,] 1 1
[4,] 2 2

So, as long as you have all numeric data, it's okay.

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3  
But you'll get into trouble if you have different data types in the df. –  Roland Oct 10 '13 at 13:54
    
@Roland Yup, I just edited to that effect. Anyway around that? –  Thomas Oct 10 '13 at 13:59
    
Yes, write an rbindByIndex function, which the OP explicitly doesn't want to do ... –  Roland Oct 10 '13 at 14:02
    
If you don't have factors, you can get this to work with mixed types by data.frame(mapply(c(df,df[,c(2,1,3)]),SIMPLIFY=F)), but then it's not as nice and concise. –  mrip Oct 10 '13 at 17:18

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