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In R, what would be the most efficient/simplest way to count runs of identical elements in a sequence?

For example, how to count the numbers of consecutive zeros in a sequence of non-negative integers:

x <- c(1,0,0,0,1,0,0,0,0,0,2,0,0) # should give 3,5,2
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Do you want answers in R? If so, it's probably wise to start the question with "In R ..." rather than just having an R tag. –  slim Oct 1 '09 at 11:40
    
Note: this doesn't work with runs of NAs or NaNs (they always get treated as non-contiguous). An ugly hack workaround would be to assign NAs and NaNs to some sentinel integer values. –  smci Apr 9 '12 at 21:06
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3 Answers

up vote 24 down vote accepted

Use rle():

y <- rle(c(1,0,0,0,1,0,0,0,0,0,2,0,0))
y$lengths[y$values==0]
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This can be done in an efficient way by using indexes of where the values change:

x <- c(1,0,0,0,1,2,1,0,0,1,1)

Find where the values change:

diffs <- x[-1L] != x[-length(x)]

Get the indexes, and then get the difference in subsequent indexes:

idx <- c(which(diffs), length(x))
diff(c(0, idx))
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That's essentially what rle() is doing. –  Rob Hyndman Oct 1 '09 at 11:47
    
Sorry Rob. Wrote that on my iPhone earlier, and there's no "app for that". :). Please vote for Rob's answer instead of mine! –  Shane Oct 1 '09 at 12:21
    
+1: While rle() is an easier way to answer the OP's question, this solution has other advantages for some cases. In particular, I was looking for a way to number each run uniquely rather than counting the runs and I found I could do that with c(0,cumsum(x[-1L] != x[-length(x)])). –  Simon Mar 8 '13 at 22:37
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x<- c(2,3,4,5,2)

length(subset(x,x=='2'))

[1] 2

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The OP was asking for counts of consecutive identical values, not total counts. The correct answer to your sequence x would be (1, 1, 1, 1, 1), since none of those numbers is adjacent to itself. –  Matt Parker Dec 2 '10 at 20:53
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