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I'm new to regular expresions. I have a gigantic text. In the aplication, i need words of 4 characters and delete the rest. The text is in spanish. So far, I can select 4 char length words but i still need to delete the rest.

This is my regular expression

\s(\w{3,3}[a-zA-ZáéíóúäëïöüñÑ])\s

How can i get all words with 4 letters in asp.net vb?

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3 Answers 3

up vote 2 down vote accepted

Using the character class provided above in another answer (\w does NOT match spanish word characters unfortunately).

You can use this for a match (it matches the reverse, basically matches everything that is NOT a 4-character word, so you can replace with " ", leaving only the 4-character words):

/(^|(?<=(?<=\W)[a-zA-ZáéíóúäëïöüñÑ]{4,4}(?=\W)))(.*?)((?=(?<=\W)[a-zA-ZáéíóúäëïöüñÑ]{4,4}(?=\W))|$)/gis

Approximated code in VB (not tested):

  Dim input As String = "This is your text"
  Dim pattern As String = "/(^|(?<=(?<=\W)[a-zA-ZáéíóúäëïöüñÑ]{4,4}(?=\W)))(.*?)((?=(?<=\W)[a-zA-ZáéíóúäëïöüñÑ]{4,4}(?=\W))|$)/gis"
  Dim replacement As String = " "
  Dim rgx As New Regex(pattern)
  Dim result As String = rgx.Replace(input, replacement)

  Console.WriteLine("Original String: {0}", input)
  Console.WriteLine("Replacement String: {0}", result)                             

You can see the result of the regex in action here:

http://regexr.com?30n29

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this is working good. Gracias –  chepe263 Apr 20 '12 at 17:59

/(?:\A|(?<=\P{L}))(\p{L}{4})(?:(?=\P{L})|\z)/g

Explanation:

Switch /g is for repeatedly search

\A is start of the string (not start of line)

\p{L} matches a single code point in the category letter

\P{L} matches a single code point not in the category letter

{n} specify a specific amount of repetition [n is number]

\z is end of string (not end of line)

| is logic OR operator

(?<=) is lookbehind

(?=) is lookahead

(?:) is non backreference grouping

() is backreference grouping

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(1) VB doesn't support regex literals; (2) it has no equivalent for the /g flag--you just call (for example) Matches() instead of Match(); (3) \p{L} matches uppercase and lowercase letters already, so you don't need the /i flag (or equivalent). –  Alan Moore Apr 20 '12 at 12:06
    
it doesn't even work here gskinner.com/RegExr –  chepe263 Apr 20 '12 at 17:47
    
@chepe263 - gskinner.com does not support \p{L} and \P{L} –  Ωmega Apr 20 '12 at 17:49
\[^a-zA-ZáéíóúäëïöüñÑ][a-zA-ZáéíóúäëïöüñÑ]{4}[^a-zA-ZáéíóúäëïöüñÑ]\g

Translated: A non-letter, followed by 4 letters, followed by a non-letter. The 'g' indicated will match globally ... more than once.

Check out this link to find out more info on looping over your matches: http://osherove.com/blog/2003/5/12/practical-parsing-using-groups-in-regular-expressions.html

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Will not work if 4-letter word will be very first or very last in string, with no non-letter before/after the word –  Ωmega Apr 19 '12 at 23:18

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