32

I gather data from 4 df's and would like to merge them by rownames. I am looking for an efficient way to do this. This is a simplified version of the data I have.

df1           <- data.frame(N= sample(seq(9, 27, 0.5), 40, replace= T),
                            P= sample(seq(0.3, 4, 0.1), 40, replace= T),
                            C= sample(seq(400, 500, 1), 40, replace= T))
df2           <- data.frame(origin= sample(c("A", "B", "C", "D", "E"), 40,
                                           replace= T),
                            foo1= sample(c(T, F), 40, replace= T),
                            X= sample(seq(145600, 148300, 100), 40, replace= T),
                            Y= sample(seq(349800, 398600, 100), 40, replace= T))
df3           <- matrix(sample(seq(0, 1, 0.01), 40), 40, 100)
df4           <- matrix(sample(seq(0, 1, 0.01), 40), 40, 100)
rownames(df1) <- paste("P", sprintf("%02d", c(1:40)), sep= "")
rownames(df2) <- rownames(df1)
rownames(df3) <- rownames(df1)
rownames(df4) <- rownames(df1)

This is what I would normally do:

# merge df1 and df2
dat           <- merge(df1, df2, by= "row.names", all.x= F, all.y= F) #merge
rownames(dat) <- dat$Row.names #reset rownames
dat$Row.names <- NULL  #remove added rownames col

# merge dat and df3
dat           <- merge(dat, df3, by= "row.names", all.x= F, all.y= F) #merge
rownames(dat) <- dat$Row.names #reset rownames
dat$Row.names <- NULL  #remove added rownames col

# merge dat and df4
dat           <- merge(dat, df4, by= "row.names", all.x= F, all.y= F) #merge
rownames(dat) <- dat$Row.names #reset rownames
dat$Row.names <- NULL #remove added rownames col

As you can see, this requires a lot of code. My question is if the same result can be achieved with more simple means. I've tried (without success): UPDATE: this works now!

MyMerge       <- function(x, y){
  df            <- merge(x, y, by= "row.names", all.x= F, all.y= F)
  rownames(df)  <- df$Row.names
  df$Row.names  <- NULL
  return(df)
}
dat           <- Reduce(MyMerge, list(df1, df2, df3, df4))

Thanks in advance for any suggestions

  • 1
    What exactly do you mean by without success? Please be more specific, include errors. Even better, create a reproducible example. – Paul Hiemstra May 21 '13 at 9:54
  • 1.) If the row names are are so important to your data structure, that you merge by those, why don't you just spend the data.frame a true column for that? Which saves you most of the coding. 2.) Even if you keep them you could save a lot of coding, see merge parameters by.x and by.y 3.) Removing a column from a data.frame can be achieved with df$Row.Names <- NULL 4.) The Reduce approach should actually work, I'm also wondering why this would fail. – Beasterfield May 21 '13 at 11:20
  • I've included some example data. I also found that the suggested approach with <reduce> does work after all. The problem was that I wanted to merge a single column from a df, thereby removing the rownames information. – HDR May 21 '13 at 11:43
  • However, in this setup only intersecting rownames are retained all.x= F and all.y= F. Would it be possible to retain all rows of df1, but exclude rows from the other df's that are not %in% rownames(df1), i.e. all.x= T, all.y= F. – HDR May 21 '13 at 11:55
  • ok, O've got that last issue covered as well. Just adjust all.x= T, all.y= T in the `MyMerge' function. Thanks for having a look @Paul and @Beasterfield. – HDR May 21 '13 at 12:18
6

Three lines of code will give you the exact same result:

dat2 <- cbind(df1, df2, df3, df4)
colnames(dat2)[-(1:7)] <- paste(paste('V', rep(1:100, 2),sep = ''),
                            rep(c('x', 'y'), each = 100), sep = c('.'))
all.equal(dat,dat2)    

Ah I see, now I understand why you are getting into so much pain. Using the old for loop surely does the trick. Maybe there are even more clever solutions

rn <- rownames(df1)
l <- list(df1, df2, df3, df4)
dat <- l[[1]]
for(i in 2:length(l)) {
  dat <- merge(dat, l[[i]],  by= "row.names", all.x= F, all.y= F) [,-1]
  rownames(dat) <- rn
}
  • Hi, thanks for your reply. I see how it works out. However, and I admit I havn't made that clear in my example data, I want this to work also when the rownames are dissimilar. So in the example the rownames are equal, but the processing should still work when the rows are shuffled, or if e.g. df2 has more or less rows. That's why I opted for merge. – HDR May 21 '13 at 14:57
41

join_all from plyr will probably do what you want. But they all must be data frames and the rownames are added as a column

require(plyr)

df3 <- data.frame(df3)
df4 <- data.frame(df4)

df1$rn <- rownames(df1)
df2$rn <- rownames(df2)
df3$rn <- rownames(df3)
df4$rn <- rownames(df4)

df <- join_all(list(df1,df2,df3,df4), by = 'rn', type = 'full')

type argument should help even if the rownames vary and do not match If you do not want the rownames:

df$rn <- NULL
13

Editing your function, I have came up with the function which allows you to merge more data frames by a specific column key (name of the column). The resulted data frame includes all the variable of the merged data frames (if you wanna keep just the common variables (excluding NA, use: all.x= FALSE, all.y= FALSE)

MyMerge <- function(x, y){
  df <- merge(x, y, by= "name of the common column", all.x= TRUE, all.y= TRUE)
  return(df)
}
new.df <- Reduce(MyMerge, list(df1, df2, df3, df4))
  • 1
    Nice function, is there anyway this function can rename column names, and give diff column names to common column names ? – Chirag Mar 24 '16 at 2:29
  • After merging the two data frames I usually use the function "fix()" which allows you to edit the data base - therefore you can also rename the columns. – Roxana Adam Mar 27 '16 at 13:04
7

I have been looking for the same function. After trying a couple of the options here and others elsewhere. The easiest for me was:

cbind.data.frame( df1,df2,df3,df4....)

  • 3
    This will only work if your rows are in the same order in each data frame. – Matt May 9 '17 at 22:05

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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