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I have a list of dataframes for which I am certain that they all contain at least one row (in fact, some contain only one row, and others contain a given number of rows), and that they all have the same columns (names and types). In case it matters, I am also certain that there are no NA's anywhere in the rows.

The situation can be simulated like this:

#create one row
onerowdfr<-do.call(data.frame, c(list(), rnorm(100) , lapply(sample(letters[1:2], 100, replace=TRUE), function(x){factor(x, levels=letters[1:2])})))
colnames(onerowdfr)<-c(paste("cnt", 1:100, sep=""), paste("cat", 1:100, sep=""))
#reuse it in a list
someParts<-lapply(rbinom(200, 1, 14/200)*6+1, function(reps){onerowdfr[rep(1, reps),]})

I've set the parameters (of the randomization) so that they approximate my true situation.

Now, I want to unite all these dataframes in one dataframe. I thought using rbind would do the trick, like this:

system.time(
result<-do.call(rbind, someParts)
)

Now, on my system (which is not particularly slow), and with the settings above, this takes is the output of the system.time:

   user  system elapsed 
   5.61    0.00    5.62

Nearly 6 seconds for rbind-ing 254 (in my case) rows of 200 variables? Surely there has to be a way to improve the performance here? In my code, I have to do similar things very often (it is a from of multiple imputation), so I need this to be as fast as possible.

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In my work, I combined a list of dataframes using a technique from Dominik here stackoverflow.com/questions/7224938/… which is relatively faster than do.call the bigger it is, and found even better performance when I read the original list data in with characters instead of factors. Using rbind spent a lot of time on match; I'm speculating it's to check for factor levels to add. –  ARobertson Nov 29 '12 at 21:05
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4 Answers 4

up vote 10 down vote accepted

Can you build your matrices with numeric variables only and convert to a factor at the end? rbind is a lot faster on numeric matrices.

On my system, using data frames:

> system.time(result<-do.call(rbind, someParts))
   user  system elapsed 
  2.628   0.000   2.636 

Building the list with all numeric matrices instead:

onerowdfr2 <- matrix(as.numeric(onerowdfr), nrow=1)
someParts2<-lapply(rbinom(200, 1, 14/200)*6+1, 
                   function(reps){onerowdfr2[rep(1, reps),]})

results in a lot faster rbind.

> system.time(result2<-do.call(rbind, someParts2))
   user  system elapsed 
  0.001   0.000   0.001

EDIT: Here's another possibility; it just combines each column in turn.

> system.time({
+   n <- 1:ncol(someParts[[1]])
+   names(n) <- names(someParts[[1]])
+   result <- as.data.frame(lapply(n, function(i) 
+                           unlist(lapply(someParts, `[[`, i))))
+ })
   user  system elapsed 
  0.810   0.000   0.813  

Still not nearly as fast as using matrices though.

EDIT 2:

If you only have numerics and factors, it's not that hard to convert everything to numeric, rbind them, and convert the necessary columns back to factors. This assumes all factors have exactly the same levels. Converting to a factor from an integer is also faster than from a numeric so I force to integer first.

someParts2 <- lapply(someParts, function(x)
                     matrix(unlist(x), ncol=ncol(x)))
result<-as.data.frame(do.call(rbind, someParts2))
a <- someParts[[1]]
f <- which(sapply(a, class)=="factor")
for(i in f) {
  lev <- levels(a[[i]])
  result[[i]] <- factor(as.integer(result[[i]]), levels=seq_along(lev), labels=lev)
}

The timing on my system is:

   user  system elapsed 
   0.090    0.00    0.091 
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1  
@Aaron : The data is a simulation, the question of OP starts with the dataframes. –  Joris Meys May 12 '11 at 16:10
    
@Joris: it's close; you could extract each type into its own list of matrices, rbind each type-list, then create a data.frame. –  Joshua Ulrich May 12 '11 at 16:12
1  
Added edit with another option. –  Aaron May 12 '11 at 17:26
2  
If you change [[ to .subset2 (which you shouldn't cause it's internal function) it runs 2x times faster. –  Marek May 13 '11 at 10:26
1  
@Nick: Glad you found it helpful. I wrote up something to convert to and from matrices, as I suggested at first; see my second edit. –  Aaron May 13 '11 at 15:23
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Not a huge boost, but swapping rbind for rbind.fill from the plyr package knocks about 10% off the running time (with the sample dataset, on my machine).

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This is ~25% faster, but there has to be a better way...

system.time({
  N <- do.call(sum, lapply(someParts, nrow))
  SP <- as.data.frame(lapply(someParts[[1]], function(x) rep(x,N)))
  k <- 0
  for(i in 1:length(someParts)) {
    j <- k+1
    k <- k + nrow(someParts[[i]])
    SP[j:k,] <- someParts[[i]]
  }
})
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Rewrite in assembly code? –  Richie Cotton May 12 '11 at 17:23
    
Building off this, I tried filling the data frame column by column by grabbing the proper column from each element with an lapply; it seems to be faster still. See edit to my answer. –  Aaron May 12 '11 at 17:28
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If you really want to manipulate your data.frames faster, I would suggest to use the package data.table and the function rbindlist(). I did not performed extensive tests but for my dataset (3000 dataframes, 1000 rows x 40 columns each) rbindlist() takes only 20 seconds.

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