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I have some data in a list that I need to look for continuous runs of integers (My brain thinkrle but don't know how to use it here).

It's easier to look at the data set and explain what I'm after.

Here's the data view:

$greg
 [1]  7  8  9 10 11 20 21 22 23 24 30 31 32 33 49

$researcher
[1] 42 43 44 45 46 47 48

$sally
 [1] 25 26 27 28 29 37 38 39 40 41

$sam
 [1]  1  2  3  4  5  6 16 17 18 19 34 35 36

$teacher
[1] 12 13 14 15

Desired output:

$greg
 [1]  7:11, 20:24, 30:33, 49

$researcher
 [1] 42:48

$sally
 [1] 25:29, 37:41

$sam
 [1]  1:6, 16:19 34:36

$teacher
 [1] 12:15

Use base packages how can I replace continuous span with a colon between highest and lowest and commas in between non the non continuous parts? Note that the data goes from a list of integer vectors to a list of character vectors.

MWE data:

z <- structure(list(greg = c(7L, 8L, 9L, 10L, 11L, 20L, 21L, 22L, 
    23L, 24L, 30L, 31L, 32L, 33L, 49L), researcher = 42:48, sally = c(25L, 
    26L, 27L, 28L, 29L, 37L, 38L, 39L, 40L, 41L), sam = c(1L, 2L, 
    3L, 4L, 5L, 6L, 16L, 17L, 18L, 19L, 34L, 35L, 36L), teacher = 12:15), .Names = c("greg", 
    "researcher", "sally", "sam", "teacher"))
share|improve this question
    
Your question is a bit similar to this one: stackoverflow.com/q/7077710/602276 –  Andrie Feb 14 '13 at 6:03

6 Answers 6

up vote 10 down vote accepted

I think diff is the solution. You might need some additional fiddling to deal with the singletons, but:

lapply(z, function(x) {
  diffs <- c(1, diff(x))
  start_indexes <- c(1, which(diffs > 1))
  end_indexes <- c(start_indexes - 1, length(x))
  coloned <- paste(x[start_indexes], x[end_indexes], sep=":")
  paste0(coloned, collapse=", ")
})

$greg
[1] "7:11, 20:24, 30:33, 49:49"

$researcher
[1] "42:48"

$sally
[1] "25:29, 37:41"

$sam
[1] "1:6, 16:19, 34:36"

$teacher
[1] "12:15"
share|improve this answer
    
This one I liked the most because I could understand everything you did. I made one small tweak to get 49:49 as 49 but that was the easy part. Thank you. –  Tyler Rinker Feb 14 '13 at 6:13

Using IRanges:

require(IRanges)
lapply(z, function(x) {
    t <- as.data.frame(reduce(IRanges(x,x)))[,1:2]
    apply(t, 1, function(x) paste(unique(x), collapse=":"))
})

# $greg
# [1] "7:11"  "20:24" "30:33" "49"   
# 
# $researcher
# [1] "42:48"
# 
# $sally
# [1] "25:29" "37:41"
# 
# $sam
# [1] "1:6"   "16:19" "34:36"
# 
# $teacher
# [1] "12:15"
share|improve this answer
    
Works very well. Not in base but useful for future searchers. Thank you. +1 –  Tyler Rinker Feb 14 '13 at 6:12
1  
Sure, anything related to intervals, it is better to use package that implements interval trees. –  Arun Feb 14 '13 at 6:16
    
Yeah this was the first time I've seen IRanges –  Tyler Rinker Feb 14 '13 at 6:17

Here is an attempt using diff and tapply returning a character vector

runs <- lapply(z, function(x) {
  z <- which(diff(x)!=1); 
  results <- x[sort(unique(c(1,length(x), z,z+1)))]
  lr <- length(results)
  collapse <- rep(seq_len(ceiling(lr/2)),each = 2, length.out = lr)
  as.vector(tapply(results, collapse, paste, collapse = ':'))
  })

runs
$greg
[1] "7:11"  "20:24" "30:33" "49"   

$researcher
[1] "42:48"

$sally
[1] "25:29" "37:41"

$sam
[1] "1:6"   "16:19" "34:36"

$teacher
[1] "12:15"
share|improve this answer
    
When I think I'm getting good at R I look at code like this and realize I have a lot to learn +1 –  Tyler Rinker Feb 14 '13 at 6:12
    
I'm not quite sure that is a compliment :). –  mnel Feb 14 '13 at 6:15
    
No it is. There were some combinations of functions I wouldn't have thought to put together :-) I liked the creativity. –  Tyler Rinker Feb 14 '13 at 6:15

I have a fairly similar solution to Marius, his works as well as mine but the mechanisms are slightly different so I thought I may as well post it:

findIntRuns <- function(run){
  rundiff <- c(1, diff(run))
  difflist <- split(run, cumsum(rundiff!=1))
  unname(sapply(difflist, function(x){
    if(length(x) == 1) as.character(x) else paste0(x[1], ":", x[length(x)])
  }))
}

lapply(z, findIntRuns)

Which produces:

$greg
[1] "7:11"  "20:24" "30:33" "49"   

$researcher
[1] "42:48"

$sally
[1] "25:29" "37:41"

$sam
[1] "1:6"   "16:19" "34:36"

$teacher
[1] "12:15"
share|improve this answer
    
Thank you for sharing your idea +1 –  Tyler Rinker Feb 14 '13 at 6:11

Another short solution with lapply and tapply:

lapply(z, function(x)
  unname(tapply(x, c(0, cumsum(diff(x) != 1)), FUN = function(y) 
    paste(unique(range(y)), collapse = ":")
  ))
)

The result:

$greg
[1] "7:11"  "20:24" "30:33" "49"   

$researcher
[1] "42:48"

$sally
[1] "25:29" "37:41"

$sam
[1] "1:6"   "16:19" "34:36"

$teacher
[1] "12:15"
share|improve this answer

Late to the party, but here's a deparse based one-liner:

lapply(z,function(x) paste(sapply(split(x,cumsum(c(1,diff(x)-1))),deparse),collapse=", "))
$greg
[1] "7:11, 20:24, 30:33, 49L"

$researcher
[1] "42:48"

$sally
[1] "25:29, 37:41"

$sam
[1] "1:6, 16:19, 34:36"

$teacher
[1] "12:15"
share|improve this answer
    
Nice approach +1 definitely late to the party ;) –  Tyler Rinker Mar 29 '13 at 15:19

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