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I have a problem with the cut function. I have this situation:

 codice
1 11GP2-0016
2 11GP2-0016
3 11GP2-0016
4  11OL2-074
5  11OL2-074

and I would like to have a new variable "campione" splitted by variable "codice" like this:

    codice campione
1 11GP2-0016    [1,3]
2 11GP2-0016    [1,3]
3 11GP2-0016    [1,3]
4  11OL2-074    (4,5]
5  11OL2-074    (4,5]

How can I use the cut function to split the "codice" creating a variabile showing that from 1 to 3 i have the same code, from 4 to 5 same code and so on?

I really appreciate your help thank you so much Nik

I need to solve another question. For the same issue I would like to obtain:

 codice campione
1 11GP2-0016    [11GP2-0016,11GP2-0016,11GP2-0016]
2 11GP2-0016    [11GP2-0016,11GP2-0016,11GP2-0016]
3 11GP2-0016    [11GP2-0016,11GP2-0016,11GP2-0016]
4  11OL2-074    (11OL2-074,11OL2-074]
5  11OL2-074    (11OL2-074,11OL2-074]

Is there any solution to do this? Tank you in advance Nik

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1  
Do you just want to know the run length, or is it important to have the start and end position? (see ?rle) –  Brandon Bertelsen Oct 18 '12 at 15:37
    
is it important the position because 1 to 3 it means sample1 to sample3. Not the length. @hadley example is good but seems that the rank is following something different than the position. Nicola –  Spigonico Oct 22 '12 at 10:12
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3 Answers

up vote 3 down vote accepted

This will do it. You can add brackets/parens, if you want.

dat <- read.table(text='codice
1 11GP2-0016
2 11GP2-0016
3 11GP2-0016
4  11OL2-074
5  11OL2-074', header=TRUE)

within(dat, 
    campione <- with(rle(as.character(codice)), {
        starts <- which(! duplicated(codice))
        ends <- starts + lengths - 1
        inverse.rle(list(values=paste(starts, ends, sep=','), lengths=lengths))
    })
)

#       codice campione
# 1 11GP2-0016      1,3
# 2 11GP2-0016      1,3
# 3 11GP2-0016      1,3
# 4  11OL2-074      4,5
# 5  11OL2-074      4,5       
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Best way for me. Using @Gavin Simpson solution the intervals are not correct. No matter for me about brakets ;) –  Spigonico Dec 5 '12 at 17:02
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Using your data:

d <- read.table(text = "1 11GP2-0016
2 11GP2-0016
3 11GP2-0016
4  11OL2-074
5  11OL2-074", row.names = 1, stringsAsFactors = FALSE)
names(d) <- "codice"

Here is a slightly convoluted example using rle():

drle <- with(d, rle(codice))

This gives us the run lengths of codice:

> drle
Run Length Encoding
  lengths: int [1:2] 3 2
  values : chr [1:2] "11GP2-0016" "11OL2-074"

and it is the $lengths component that I manipulate to create two indicates, the start (ind1) and the end (ind2) location:

ind1 <- with(drle, rep(seq_along(lengths), times = lengths) +
                     rep(c(0, head(lengths, -1) - 1), times = lengths))
ind2 <- ind1 + with(drle, rep(lengths- 1, times = lengths))

Then I just paste these together:

d <- transform(d, campione = paste0("[", ind1, ",", ind2, "]"))

Giving

> head(d)
      codice campione
1 11GP2-0016    [1,3]
2 11GP2-0016    [1,3]
3 11GP2-0016    [1,3]
4  11OL2-074    [4,5]
5  11OL2-074    [4,5]
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Nice, although you're missing the rounded left parens on the second level of that factor... (Just kidding. Your notation's better.) –  Josh O'Brien Oct 18 '12 at 15:54
    
Yeah, I know as I failed to even both using cut()! Bad me! ;-) Hope the OP doesn't mind - those are nicer but just labels that cut() produces... The OP can convert to a factor if the want... (And thanks by the way!) –  Gavin Simpson Oct 18 '12 at 15:57
1  
Well, strictly speaking, the interval (4,5] shouldn't include the 4th element at all, which is why yours is objectively better. –  Josh O'Brien Oct 18 '12 at 15:59
    
Yes, I win!! ;-) –  Gavin Simpson Oct 18 '12 at 16:05
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An alternative approach is to use rank:

left <- rank(factor(d$codice), ties.method = "min")
right <- rank(factor(d$codice), ties.method = "max")
d$campione <- paste("[", left, ",", right, "]", sep = "")
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Dear Hadley, I think that I'm doing something wrong because your way is easier for me than otherones but I have a problem because the rank doesen't start from 1 but it starts from 395 (my databse is around 900 cases). Thank you in advance –  Spigonico Oct 22 '12 at 10:00
    
Please provide a reproducible example that illustrates the problem. –  hadley Oct 22 '12 at 23:04
    
what I would like to do is to find duplicated rows in my data frame by some variables. In this case only one "Codice" but further I'd like to use more than one variable. –  Spigonico Dec 3 '12 at 17:01
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