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I was thinking in providing the following regex as an answer to this question, but I can't seem to write the regular expression I was looking for:

w?o?r?d?p?r?e?s?s?

This should match a ordered abbreviation of the word wordpress, but it can also match nothing at all.

How can I modify the above regex in order for it to match at least 4 chars in order? Like:

  • word
  • wrdp
  • press
  • wordp
  • wpress
  • wordpress

I'd like to know what is the best way to do this... =)

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4 Answers 4

up vote 5 down vote accepted

You could use a lookahead assertion:

^(?=.{4})w?o?r?d?p?r?e?s?s?$
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It seems to find abbreviations out of order like wodr. –  Alix Axel Jan 21 '10 at 15:12
    
Alix it's not exactly clear what abbreviations are ok and which are not: why wrdp yes and wodr no? –  Matteo Riva Jan 21 '10 at 15:16
    
@kemp: I'm sorry, they both should be okay because the r appears twice. wodw this one should not be matched. Sorry for the confusion. –  Alix Axel Jan 21 '10 at 15:18
1  
@Alix Axel: Add marks for the start and the end and it works. –  Gumbo Jan 21 '10 at 15:20
1  
this is cool... –  Dyno Hongjun Fu Jan 21 '10 at 15:33

What about php similarity checker functions?

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Nice one, thanks! –  Alix Axel Jan 21 '10 at 15:07
if ( strlen($string) >= 4 && preg_match('#^w?o?r?d?p?r?e?s?s?$#', $string) ) {
    // abbreviation ok
}

This won't even run the regexp unless the string is at least 4 chars long.

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i know this is not a regex, just for fun...

#!/usr/bin/python

FULLWORD = "wordprocess"

def check_word(word):
    i, j = 0, 0
    while i < len(word) and j < len(FULLWORD):
        if word[i] == FULLWORD[j]:
            i += 1; j += 1
        else:
            j += 1

    if j >= len(FULLWORD) or i < 4 or i >= len(FULLWORD):
        return "%s: FAIL" % word
    return "%s: SUCC" % word

print check_word("wd")
print check_word("wdps")
print check_word("wsdp")
print check_word("wordprocessr")
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