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I have a list of many data frames that I want to merge (not merely rbind, for which plyr's rbind.fill would do the job in a stroke) into a single, combined data frame. Because the merge command only works on 2 data frames, I turned to the Internet for ideas. I got this one from here, which worked perfectly in R 2.7.2, which is what I had at the time:

merge.rec <- function(.list, ...){
    if(length(.list)==1) return(.list[[1]])
    Recall(c(list(merge(.list[[1]], .list[[2]], ...)), .list[-(1:2)]), ...)
}

And I would call the function like so:

df <- merge.rec(my.list, by.x = c("var1", "var2"), by.y = c("var1", "var2"), all = T, suffixes=c("", ""))

But in any R version after 2.7.2, including 2.11 and 2.12, this code failes with the following error:

Error in match.names(clabs, names(xi)) : 
  names do not match previous names

(Incidently, I see other references to this error elsewhere with no resolution).

Is there a way I can spruce up this code snippet to work on modern R versions, or solve this problem in some other way? I hate to keep having to boot up my old R located on only 1 of my machines to do this one line of code.

You can see replication code with my real data here.

UPDATE: Just to be more specific, I have data frames in the list that differ in terms of their number of rows and columns, but they all share the key variables (which I've called "var1" and "var2" above).

UPDATE 2: Here's what the data actually look like if that's more helpful. I have a list, 19 data frames long. The first 3 data frames are empty, but have column names.

> my.list[[3]]
[1] senate1995 name       matchname  party      st         district   chamber    votes.year
<0 rows> (or 0-length row.names)

Data frames 4-14 are full. As an example, here's the fourth:

> my.list[[4]][1:3,1:10]
      senate1996    name matchname party st district chamber v2 v3 v4
64177          1 Algiere   ALGIERE   200 RI      026       S  9  9  1
64196          1   Alves     ALVES   100 RI      019       S  1  1  9
64245          1  Badeau    BADEAU   100 RI      032       S  1  1  9

And here's the fifth:

> my.list[[5]][1:3,1:10]
      senate1997    name matchname party st district chamber v2 v3 v4
64178          1 Algiere   ALGIERE   200 RI      026       S  6  1  1
64197          1   Alves     ALVES   100 RI      019       S  1  9  9
64246          1  Badeau    BADEAU   100 RI      032       S  9  1  9

Data frames 15-19 are empty but look just like the first 3.

I match on "matchname", "party", "st", "district", and "chamber". So in this example, I want to merge these people together such that the output data frame will have one line for each of them, but they have multiple variables: senate1996, senate1997, and renamed v2 v3 v4. That old code I used, with Recall, did just that ... but only on R 2.7.2!

UPDATE 3: I have posted replication code on Pastebin that replicates this failure, along with real data that is accessed online from the code.

Thanks!

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2  
paste bin link is dead –  user56 Dec 13 '12 at 19:11

3 Answers 3

up vote 48 down vote accepted

Reduce makes this fairly easy:

merged.data.frame = Reduce(function(...) merge(..., all=T), list.of.data.frames)

Example code:

set.seed(1)
list.of.data.frames = list(data.frame(x=1:10, a=1:10), data.frame(x=5:14, b=11:20), data.frame(x=sample(20, 10), y=runif(10)))
merged.data.frame = Reduce(function(...) merge(..., all=T), list.of.data.frames)
tail(merged.data.frame)
#    x  a  b         y
#12 12 NA 18        NA
#13 13 NA 19        NA
#14 14 NA 20 0.4976992
#15 15 NA NA 0.7176185
#16 16 NA NA 0.3841037
#17 19 NA NA 0.3800352

Using example data from http://pastebin.com/Ep2B9bUT to replicate my.list:

merged.data.frame = Reduce(function(...) merge(..., by=match.by, all=T), my.list)
merged.data.frame[, 1:12]

#  matchname party st district chamber senate1993 name.x v2.x v3.x v4.x senate1994 name.y
#1   ALGIERE   200 RI      026       S         NA   <NA>   NA   NA   NA         NA   <NA>
#2     ALVES   100 RI      019       S         NA   <NA>   NA   NA   NA         NA   <NA>
#3    BADEAU   100 RI      032       S         NA   <NA>   NA   NA   NA         NA   <NA>

Okay looks like this is arguably a bug in merge. The problem is there is no check that adding the suffixes (to handle overlapping non-matching names) actually makes them unique. At a certain point it uses [.data.frame which does make.unique the names, causing the rbind to fail.

# first merge will end up with 'name.x' & 'name.y'
merge(my.list[[1]], my.list[[2]], by=match.by, all=T)
# [1] matchname    party        st           district     chamber      senate1993   name.x      
# [8] votes.year.x senate1994   name.y       votes.year.y
#<0 rows> (or 0-length row.names)
# as there is no clash, we retain 'name.x' & 'name.y' and get 'name' again
merge(merge(my.list[[1]], my.list[[2]], by=match.by, all=T), my.list[[3]], by=match.by, all=T)
# [1] matchname    party        st           district     chamber      senate1993   name.x      
# [8] votes.year.x senate1994   name.y       votes.year.y senate1995   name         votes.year  
#<0 rows> (or 0-length row.names)
# the next merge will fail as 'name' will get renamed to a pre-existing field.

Easiest way to fix is to not leave the field renaming for duplicates fields (of which there are many here) up to merge. Eg:

my.list2 = Map(function(x, i) setNames(x, ifelse(names(x) %in% match.by,
      names(x), sprintf('%s.%d', names(x), i))), my.list, seq_along(my.list))

The merge/reduce will then work fine.

share|improve this answer
    
Thanks! I saw this solution also on the link from Ramnath. Looks easy enough. But I get the following error: "Error in match.names(clabs, names(xi)) : names do not match previous names". The variables I'm matching on are all present in all the dataframes in the list, so I'm not catching what this error is telling me. –  bshor Nov 11 '11 at 21:49
    
I tested this solution on R2.7.2 and I get the same match.names error. So there's some more fundamental problem with this solution and my data. I used the code: Reduce(function(x, y) merge(x, y, all=T,by.x=match.by, by.y=match.by), my.list, accumulate=F) –  bshor Nov 14 '11 at 19:28
1  
Strange, I added the code that I tested it with which runs fine. I guess there is some field-renaming occurring based on the merge args you're using? The merged result must still have the relevant keys in order to be merged with the subsequent data frame. –  Charles Nov 14 '11 at 20:12
    
I suspect something happening with empty data frames. I tried out some examples like this: empty <- data.frame(x=numeric(0),a=numeric(0); L3 <- c(empty,empty,list.of.data.frames,empty,empty,empty) and got some weird stuff happening that I haven't figured out yet. –  Ben Bolker Nov 14 '11 at 22:10
    
@Charles You're onto something. Your code runs fine above for me. And when I adapt it to mine, it runs fine too -- except that it does a merge ignoring the key variables I want. When I try to add key variables rather than leave them out, I get a new error "Error in is.null(x) : 'x' is missing". The code line is "test.reduce <- Reduce(function(...) merge(by=match.by, all=T), my.list)" where match.by are the vector of key variable names I want merged by. –  bshor Nov 15 '11 at 19:56

You can do it using merge_all in the reshape package. You can pass parameters to merge using the ... argument

reshape::merge_all(list_of_dataframes, ...)

Here is an excellent resource on different methods to merge data frames.

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looks like I just replicated merge_recurse =) good to know this function already exists. –  SFun28 Nov 11 '11 at 15:29
6  
yes. whenever i have an idea, i always check if @hadley has already done it, and most of the times he has :-) –  Ramnath Nov 11 '11 at 15:33
    
I'm a little confused; should I do merge_all or merge_recurse? In any case, when I try to add in my additional arguments to either, I get the error "formal argument "all" matched by multiple actual arguments". –  bshor Nov 11 '11 at 21:42
    
Forgot to add thanks for the response, of course! –  bshor Nov 11 '11 at 21:50
    
@bshor. it would be useful to post a few lines of your original data frames, so that your error is reproducible. you can easily do it using dput. –  Ramnath Nov 12 '11 at 0:03

You can use recursion to do this. I haven't verified the following, but it should give you the right idea:

MergeListOfDf = function( data , ... )
{
    if ( length( data ) == 2 ) 
    {
        return( merge( data[[ 1 ]] , data[[ 2 ]] , ... ) )
    }    
    return( merge( MergeListOfDf( data[ -1 ] , ... ) , data[[ 1 ]] , ... ) )
}
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