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I often deal with objects of this form:

v <- list(one = c(a = 1, b = 2, c = 3), two = c(a = 10, b = 20, d = 30, c = 40))

and I would like to outer join these vectors by element name, to obtain:

  index value.x value.y
1     a       1      10
2     b       2      20
3     c       3      40
4     d      NA      30

I have written code to do this. In a nutshell, converts the vectors to data frames and reduces via successive merges. But I wonder if I have been reinventing the wheel and there is some function contained in a package, or in R base, possibly optimized. It seems a very common task.

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In your real application scenario, I'm assuming that your lists comprise more than two items. Is that correct? – A Handcart And Mohair Sep 6 '12 at 4:38
up vote 2 down vote accepted

Not sure this will be any simpler than your approach, but you could use reshape2 , lapply and as.list. I think the melt `dcast

library(reshape2)
dcast(melt(lapply(v, as.list)), L2 ~L1)
##   L2 one two
## 1  a   1  10
## 2  b   2  20
## 3  c   3  40
## 4  d  NA  30
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Here are two options in base R. They require converting your list into a data.frame first.

v2 <- data.frame(do.call(rbind, 
                         strsplit(names(unlist(v)), "\\.")), 
                 unlist(v))
names(v2) <- c("time", "id", "value")
xtabs(value ~ id + time, v2)
#     time
#  id  one two
#    a   1  10
#    b   2  20
#    c   3  40
#    d   0  30
reshape(v2, direction="wide", idvar="id", timevar="time")
#       id value.one value.two
# one.a  a         1        10
# one.b  b         2        20
# one.c  c         3        40
# two.d  d        NA        30

I don't know of a more direct way to split up the names that results from using unlist, but once that is done, the manipulation that you are trying to do becomes much easier.

Assigning new names is done to make the output more "tidy".

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Here's a base solution:

> do.call( merge,  list(v[[1]], v[[2]], by="row.names", all=TRUE))
  Row.names  x  y
1         a  1 10
2         b  2 20
3         c  3 40
4         d NA 30

For more a list of length >2 you can use as.data.frame.table to convert from a named vector to a two-column data.frame

> v <- list(one = c(a = 1, b = 2, c = 3), 
           two = c(a = 10, b = 20, d = 30, c = 40), 
           three = c(a = 1, b = 2, c = 3))
> setNames(Reduce(function(x,y) {
        merge(x,y,all=T, by ='Var1')},lapply(v, as.data.frame.table)),
         c('index', names(v)))

  index one two three
1     a   1  10     1
2     b   2  20     2
3     c   3  40     3
4     d  NA  30    NA
share|improve this answer
    
nice! After looking at this solution, I realized you can also do Reduce(function(x, y) merge(x, y, by="row.names", all=TRUE), v). However, it seems like this only works if you have two list items. Is it possible to adapt this method to work with a longer list? I ask because I suspect that the OP has more than two items in their list (they mentioned using "successive merges"). – A Handcart And Mohair Sep 6 '12 at 4:36
3  
Reduce(function(x,y) {merge(x,y,all=T, by ='index')},lapply(v, function(x) data.frame(x, index = names(x)))) works for more lists with length more than 2 – mnel Sep 6 '12 at 5:04
    
@mnel, good call on adding a conversion to a data.frame there to solve the problem. Prettying up the resulting names is also easy: v2 <- Reduce(...etc...); names(v2)[-1] <- names(v). In terms of processing speed, this is faster than dcast (but that's not really a surprise to me). – A Handcart And Mohair Sep 6 '12 at 5:25
    
You can also use as.data.frame.table to convert from a named vector to a two column data.frame setNames(Reduce(function(x,y) {merge(x,y,all=T, by ='Var1')},lapply(v, as.data.frame.table)), c('index', names(v))) – mnel Sep 6 '12 at 6:33
    
@mnel: You should have added the second section as your own answer. – 42- Sep 6 '12 at 7:09

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