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How to remove consecutive duplicate entries in R? I think with may be used but can't think how to use it. Illustrating one example:

read.table(text = "
   a        t1
   b        t2
   b        t3
   b        t4
   c        t5
   c        t6
   b        t7
   d        t8")

Sample Data: D

    events    time
       a        t1
       b        t2
       b        t3
       b        t4
       c        t5
       c        t6
       b        t7
       d        t8

Required Outcome:

     events     time
       a        t1
       b        t4
       c        t6
       b        t7
       d        t8

`

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5 Answers 5

Yet an other one, assuming your data.frmae is named d:

d[cumsum(rle(as.numeric(d[,1]))$lengths),]
  V1 V2
1  a t1
4  b t4
6  c t6
7  b t7
8  d t8
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+1 This was going to be my answer too. I read the OP question and when they said remove consecutive duplicate entries I thought to take the first of each using cumsum( rle( df$Event )$lengths ) - rle( df$Event )$lengths + 1 –  Simon O'Hanlon Jul 15 '13 at 9:44
    
+1, definitely better then my somewhat challenging combination of rle, mapply, split, tail, do.call, ... –  Henrik Jul 15 '13 at 9:57
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EDIT: Not exactly correct as it only shows one b row. You can also use the duplicated() function

x <- read.table(text = "    events    time
   a        t1
   b        t2
   b        t3
   b        t4
   c        t5
   c        t6
   d        t7", header = TRUE)
#Making sure the data is correctly ordered!
x <- x[order(x[,1], x[,2]), ]      
x[!duplicated(x[,1], fromLast=TRUE), ]
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This is close, but it doesn't quite give the OP's intended result. I never knew about fromLast=TRUE though - quite neat. –  thelatemail Jul 15 '13 at 9:49
    
Oh darn! There were two b rows! –  Xachriel Jul 15 '13 at 9:51
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A solution in base R using split-apply-combine works via the tail function which returns the last element and rle in combination with mapply to create a new vector of events that preserves the order in case of reappearing events:

x <- read.table(text = "    events    time
       a        t1
       b        t2
       b        t3
       b        t4
       c        t5
       c        t6
       b        t7
       d        t8", header = TRUE)


# create vector of new.events (i.e., preserve reappearing objects)
occurences <- rle(as.character(x$events))[["lengths"]]
new.events <- unlist(mapply(rep, x = letters[seq_along(occurences)], times = occurences))

# split into sublists per event
s1 <- split(x, list(new.events))

# get last element from list
s2 <- lapply(s1, tail, n = 1)

# combine again
do.call(rbind, s2)

This produces the desired output.

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Thank you for the help but there is a slight change in the question. Also does the order remain same in using tail? I tried this and it is sorting events in alphabetical order. –  anu Jul 15 '13 at 9:36
    
@anu please see my update, should work now. –  Henrik Jul 15 '13 at 9:46
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And for good measure, using head and tail:

dat[with(dat,c(tail(events,-1) != head(events,-1),TRUE)),]

  events time
1      a   t1
4      b   t4
6      c   t6
7      b   t7
8      d   t8
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unique(D)

please post in a way that example data can be pasted, for reproducibility.

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I don't think this works as OP actually wanted something different then he/she asked in the question, as the required outcome shows. –  Henrik Jul 15 '13 at 9:32
    
unique is not giving desired output. –  anu Jul 15 '13 at 9:37
    
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  alko Nov 27 '13 at 20:15
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