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I have a vector of usernames that have non A-Z characters in them. I want to be able to strip those characters out. I was told to use letters vector but y =x[letters] doesn't seem to work.

Thanks

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3 Answers 3

up vote 4 down vote accepted

If x is your vector, use a simple pair of range regexes with gsub and replace all with the empty string. Using ^ gives the negation of the pattern:

gsub("[^a-zA-Z]", "", x)

For example, with some simple data.

 gsub("[^a-zA-Z]", "", c(letters, LETTERS, "3s8t7a2c9k:o3v8e7r%F%L^O#W%&^%@#^"))
 [1] "a"             "b"             "c"             "d"             "e"             "f"             "g"             "h"            
 [9] "i"             "j"             "k"             "l"             "m"             "n"             "o"             "p"            
[17] "q"             "r"             "s"             "t"             "u"             "v"             "w"             "x"            
[25] "y"             "z"             "A"             "B"             "C"             "D"             "E"             "F"            
[33] "G"             "H"             "I"             "J"             "K"             "L"             "M"             "N"            
[41] "O"             "P"             "Q"             "R"             "S"             "T"             "U"             "V"            
[49] "W"             "X"             "Y"             "Z"             "stackoverFLOW"
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regex works pretty well thanks! –  akz Sep 24 '11 at 23:34
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Maybe this does what you want

username <- "user12_AB"
strip_non_letters <- function(s) {
  idx <- which(strsplit(tolower(s),"")[[1]] %in% letters)
  paste(strsplit(s, "")[[1]][idx], collapse="")
}
strip_non_letters(username)
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this sort of makes sense, but I am still learning so some of it is not making sense. I'll give it a go and see if I can understand it. –  akz Sep 24 '11 at 23:35
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similar to the above from Karsten, hope not too redundant

    usernames <- c("A!ex25","Goerge?","H@rry","Dumbname89")
    # a function to cut out non-letters
    onlyletters <- function(x){
    chars <- unlist(strsplit(x,split=""))
    charsout <- chars[chars%in%c(letters,LETTERS)]
    paste(charsout,sep="",collapse="")
    }
    sapply(usernames,onlyletters)
    > A!ex25    Goerge?      H@rry Dumbname89 
    > "Aex"   "Goerge"     "Hrry" "Dumbname" 
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thanks. The redundancy actually helps. Trying to wrap my head around it. –  akz Sep 24 '11 at 23:36
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