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I would like to remove a set of suffixes from a set of full names (both suffixes and full names are character vectors). This is pretty easy with two for() loops and gsub(), but it seems that there should be a more efficient approach (both in lines of code and clock cycles).

My first thought was rapply(), but I can't get it to work. Maybe the for() loop is the best approach, but at this point I'm interested in better understanding rapply()

Here's the for() loop version.

names.full <- c("tom inc", "dick co", "harry incorp", "larry inc incorp", "curly", "moe")
suffix <- c("inc", "incorp", "incorporated", "co", "company")
suffix <- paste(" ", suffix, "$", sep = "")

# with loops
names.abbr <- names.full
for (k in seq(2)) {
    for (i in seq(length(names.abbr))) {
        for (j in seq(length(suffix))) {
            names.abbr[i] <- gsub(suffix[j], "", names.abbr[i])
        }
    }
}

And my failed rapply() version.

# with rapply
inner.fun <- function(y, x) {
    rapply(as.list(x), function(x) gsub(y, "", x), how = "replace")
}
names.abbr.fail <- unlist(rapply(as.list(suffix), inner.fun, x = names.full, how = replace))

Which gives the following error:

> names.abbr.fail <- unlist(rapply(as.list(suffix), inner.fun, x = names.full, how = replace))
Error in match.arg(how) : 'arg' must be NULL or a character vector
share|improve this question
    
The error is I think because you haven't quoted "replace" in your inner.fun. Not sure how to do this with rapply, but I'm sure there's a better way than the for loops... –  joran Jul 19 '11 at 1:10

2 Answers 2

up vote 3 down vote accepted

In your example, you only end up removing all but the first word. That's easily done with

sub(" .*$", "", names.full)

But a more general regexpr pattern is something like "(suffix1|suffix2)" that has ALL your suffixes.

Since you seem to want to remove multiple suffixes from one string as in "larry inc incorp", you need something like "( suffix1| suffix2)+$".

Then you can simply apply it to names.full (I changed "moe" into "moe money" to show something where the "first word" solution fails). It would look something like this:

names.full <- c("tom inc", "dick co", "harry incorp",
  "larry inc incorp", "curly", "moe money")
suffix <- c("inc", "incorp", "incorporated", "co", "company")

pattern <- paste("(", paste(" ", suffix, collapse="|", sep=""), ")+$", sep="")    
sub(pattern, "", names.full)
[1] "tom"       "dick"      "harry"     "larry"     "curly"     "moe money"

And by the way, if you don't want to replace anything but the suffix, sub is probably a better fit than gsub (gsub is typically used to replace several instances of a pattern within a word).

share|improve this answer

Do you really need to use the for loops? I think you should be able to use back references in gsub to extract what you want.

  • The \\w matches any character in the range 0 - 9, A - Z and a - z.
  • The + matches the previous character 1 or more times.
  • The () allow us to back reference whatever is inside later in the regex.
  • The . matches any character all characters and * matches the preceding character 0 or more times.

Putting all of the above together gives us:

gsub("(\\w+)(.*)", "\\1", names.full)

> gsub("(\\w+)(.*)", "\\1", names.full)
[1] "tom"   "dick"  "harry" "larry" "curly"  "moe"   
share|improve this answer
    
This works for the given example names, but simply keeps the first word. It would not work on a string like 'moe money inc'. –  Tommy Jul 19 '11 at 3:38
    
@Tommy - fair point, though from reading through the OP original question and example, that's what he seemingly wanted. Robust solutions should really come with robust examples :) +1 for your answer. –  Chase Jul 19 '11 at 11:47

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