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I want to add a column containing the amount of letters a-z in a different column from the same row.

dataset$count <-length((gregexpr('[a-z]', as.character(dataset$text))[[1]]))

does not work.

The result I would like to acheive:

text  |  count
a     |  1
ao    |  2
ao2   |  2
as2e  |  3
as2eA |  3
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Can you provide an example, please? I can interpret this in many ways. – Andrie Jun 17 '11 at 11:40
Sure... basically I want to count each lowercase letter. – Chris Jun 17 '11 at 11:42

2 Answers 2

up vote 13 down vote accepted

Tricky one:

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Nice hack! Certainly better than gregexpr. – aL3xa Jun 17 '11 at 13:15

This should do the trick:

  #basically your code, but to be applied to 1 item
  tmpres<-gregexpr('[a-z]', as.character(txt))[[1]]
  ifelse(tmpres[1]==-1, 0, length(tmpres))
#now apply it to all items:
dataset$count <-sapply(dataset$text, numchars)

Another option is more of a two-step approach:

charmatches<-gregexpr('[a-z]', as.character(dataset$text))[[1]]
dataset$count<-sapply(charmatches, length)
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gregexpr doesn't seem to work as I would expect it to do: – Chris Jun 17 '11 at 11:59
gregexpr('[a-z]', as.character("AAA"))[[1]] returns 1 as does gregexpr('[a-z]', as.character("AAAa"))[[1]] – Chris Jun 17 '11 at 11:59
Right. For no matches, apparently gregexpr return a vector with one element, holding -1. I edited accordingly (although @Marek's solution is way cooler) – Nick Sabbe Jun 17 '11 at 12:23

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