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Using a Perl or unix regex, how would I capture a word that is not a range of values. Here is what I am trying to achieve.

(\w:not('int','long'))
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Just in case, when you say 'int' and 'long' do you mean the strings 'int' and 'long', or do you have in mind variable types (as in C)? I'm pretty sure you mean the strings, but just in case... –  Telemachus Sep 8 '09 at 14:04
    
so wouldn't it be better to talk about sets and not about ranges? –  innaM Sep 8 '09 at 14:21
    
Yeah I mean strings :) –  Ryall Sep 8 '09 at 14:26

2 Answers 2

up vote 9 down vote accepted

Not sure if this is valid perl syntax, but in "generic" flavor you can say

/\b(?!int\b|long\b)\w+\b/

If you want to capture the word, put parens around \w+, like this

/\b(?!int\b|long\b)(\w+)\b/
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That's what I would have done. –  Clement Herreman Sep 8 '09 at 13:03
    
@Adam: don't you need (\w+) to capture what we want to find instead? Or am I confused? (I.e., you need the parens to have the item available in $1, no?) –  Telemachus Sep 8 '09 at 14:11
    
@Telemachus: Whoops, you are right! I need more coffee. I was reading "match" where the letters clearly spelled "capture". –  Adam Bellaire Sep 8 '09 at 14:13
    
So would the syntax be /\b(?!int\b|long\b)(\w+)\b/ or /\b((?!int\b|long\b)\w+)\b/? –  Ryall Sep 8 '09 at 14:26
    
Yes, you can add the parens around \w+ if you want to grab the word from $1. –  harpo Sep 8 '09 at 15:17

It is generally faster to say:

my %exclude = map { $_ => 1 } qw/int long/;
my @words   = grep { not exists $exclude{$_} } /(?:\b|^) (\w+) (?:\b|$)/gx;

especially on versions of Perl prior to 5.10 (when alternation got a massive speed increase).

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Nice approach. Thoroughly generic :) –  Nic Gibson Sep 8 '09 at 15:28

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