9

I have a problem dealing with a data frame in R. I would like to paste the contents of cells in different rows together based on the values of the cells in another column. My problem is that I want the output to be progressively (cumulatively) printed. The output vector must be of the same length as the input vector. Here is a sampel table similar to the one I am dealing with:

id <- c("a", "a", "a", "b", "b", "b")
content <- c("A", "B", "A", "B", "C", "B")
(testdf <- data.frame(id, content, stringsAsFactors=FALSE))
#  id content
#1  a       A
#2  a       B
#3  a       A
#4  b       B
#5  b       C
#6  b       B

And this is want I want the result to look like:

result <- c("A", "A B", "A B A", "B", "B C", "B C B") 
result

#[1] "A"     "A B"   "A B A" "B"     "B C"   "B C B"

What I do NOT need something like this:

ddply(testdf, .(id), summarize, content_concatenated = paste(content, collapse = " "))

#  id content_concatenated
#1  a                A B A
#2  b                B C B
  • 4
    You want something like a "cumulative paste". You could use Reduce: ave(as.character(testdf$content), testdf$id, FUN = function(x) Reduce(paste, x, acc = T)) – alexis_laz Jul 21 '14 at 9:51
  • 2
    @alexis_laz, this is the comment box, not the answer box :-) – A5C1D2H2I1M1N2O1R2T1 Jul 21 '14 at 9:54
  • @alexis_laz: great! it worked! thanks a lot! all the best – user3860074 Jul 21 '14 at 9:57
  • 1
    @AnandaMahto : I tend to see it as the "it-has-to-be-in-SO-somewhere-but-I'm-too-lazy-to-search" box :P – alexis_laz Jul 21 '14 at 10:03
  • 4
    @alexis_laz, but people don't read comments for the answers. So unless you're going to do the work of finding a duplicate to mark, it's much more helpful to the community if you took the 10 seconds to post an answer, let the OP accept it, and show clearly that this is a resolved question.... At least that's my perspective. – A5C1D2H2I1M1N2O1R2T1 Jul 21 '14 at 10:40
29

You could define a "cumulative paste" function using Reduce:

cumpaste = function(x, .sep = " ") 
          Reduce(function(x1, x2) paste(x1, x2, sep = .sep), x, accumulate = TRUE)

cumpaste(letters[1:3], "; ")
#[1] "a"       "a; b"    "a; b; c"

Reduce's loop avoids re-concatenating elements from the start as it elongates the previous concatenation by the next element.

Applying it by group:

ave(as.character(testdf$content), testdf$id, FUN = cumpaste)
#[1] "A"     "A B"   "A B A" "B"     "B C"   "B C B"

Another idea, could to concatenate the whole vector at start and, then, progressively substring:

cumpaste2 = function(x, .sep = " ")
{
    concat = paste(x, collapse = .sep)
    substring(concat, 1L, cumsum(c(nchar(x[[1L]]), nchar(x[-1L]) + nchar(.sep))))
}
cumpaste2(letters[1:3], " ;@-")
#[1] "a"           "a ;@-b"      "a ;@-b ;@-c"

This seems to be somewhat faster, too:

set.seed(077)
X = replicate(1e3, paste(sample(letters, sample(0:5, 1), TRUE), collapse = ""))
identical(cumpaste(X, " --- "), cumpaste2(X, " --- "))
#[1] TRUE
microbenchmark::microbenchmark(cumpaste(X, " --- "), cumpaste2(X, " --- "), times = 30)
#Unit: milliseconds
#                  expr      min       lq     mean   median       uq      max neval cld
#  cumpaste(X, " --- ") 21.19967 21.82295 26.47899 24.83196 30.34068 39.86275    30   b
# cumpaste2(X, " --- ") 14.41291 14.92378 16.87865 16.03339 18.56703 23.22958    30  a

...which makes it the cumpaste_faster.

  • 24
    Terrible name for a function, but +1 for the answer (and thanks for bearing with my comments) :-) – A5C1D2H2I1M1N2O1R2T1 Jul 21 '14 at 13:33
  • 1
    @AnandaMahto : Ha, I knew I had to go with "foo", but sometimes you have to call it as you see it :). (or, in this case, as you use it..) – alexis_laz Jul 21 '14 at 17:44
  • 22
    A seminal answer! – James Jul 22 '14 at 9:23
2

Here's a ddply method using sapply and subsetting to paste together incrementally:

library(plyr)
ddply(testdf, .(id), mutate, content_concatenated = sapply(seq_along(content), function(x) paste(content[seq(x)], collapse = " ")))
  id content content_concatenated
1  a       A                    A
2  a       B                  A B
3  a       A                A B A
4  b       B                    B
5  b       C                  B C
6  b       B                B C B
  • You probably would want to mention where ddply comes from – David Arenburg Jul 21 '14 at 11:10
  • 1
    @DavidArenburg, edit button, under the answer :-) – A5C1D2H2I1M1N2O1R2T1 Jul 21 '14 at 11:10
2

data.table solution

library(data.table)
setDT(testdf)[, content2 := sapply(seq_len(.N), function(x) paste(content[seq_len(x)], collapse = " ")), by = id]
testdf

##    id content content2
## 1:  a       A        A
## 2:  a       B      A B
## 3:  a       A    A B A
## 4:  b       B        B
## 5:  b       C      B C
## 6:  b       B    B C B
  • Best and simpler solution! – Alessandro Sep 30 at 11:49
2

You may also try dplyr

 library(dplyr)
 res <- testdf%>%
        mutate(n=row_number()) %>%
        group_by(id) %>%
        mutate(n1=n[1L]) %>%
        rowwise() %>% 
        do(data.frame(cont_concat= paste(content[.$n1:.$n],collapse=" "),stringsAsFactors=F))

 res$cont_concat
 #[1] "A"     "A B"   "A B A" "B"     "B C"   "B C B"
  • 1
    This only seems to work because content is manually defined as a vector above. Is there a way to do it all within dplyr without having to refer to objects outside the dataframe? – Erik Shilts Jul 19 '17 at 2:22
  • @ErikShilts Please post as a new question – akrun Jul 19 '17 at 4:46
0

One option using dplyr and purrr could be:

testdf %>%
 group_by(id) %>%
 transmute(content_concatenated = accumulate(content, ~ paste(.x, .y)))

  id    content_concatenated
  <chr> <chr>               
1 a     A                   
2 a     A B                 
3 a     A B A               
4 b     B                   
5 b     B C                 
6 b     B C B  

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