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I am using VB .NET to write a program that will get the words from a suplied text file and count how many times each word appears. I am using this regular expression:-

parser As New Regex("\w+")

It gives me almost 100% correct words. Except when I have words like

"Ms Word App file name is word.exe." or "is this a c# statment If(a>b?1,0) ?"

In such cases I get [word & exe] AND [If, a, b, 1 and 0] as seperate words. it would be nice (for my purpose) that I received word.exe and (If(a>b?1,0) as words.

I guess \w+ looks for white space, sentence terminating punctuation mark and other punctuation marks to determine a word.

I want a similar regular Expression that will not break a word by a punctuation mark, if the punctuation mark is not the end of the word. I think end-of-word can be defined by a trailing WhiteSpace, Sentence terminating Punctuation (you may think of others). if you can suggest some regular expression 9for VB .NET) that will be great help.

Thanks.

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Just read up and play –  kenny Apr 19 '10 at 19:54

4 Answers 4

up vote 0 down vote accepted

If we assume that . with a space after it is a full stop then this regex should work

[\w(?!\S)\.]+
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@Hun1Ahpu: This one is working best so far. Only problem is, for the words at the end of a sentence it is including the terminal FullStop(.), Questionmark (?) and Exclamation marks(!). If a word ends with a Comma(,) this RegEx is also including it. Like: "i like mango, orange and banana." will get "mango,", "orange," and "banana." as words. But would be perfect if i got "mango", "orange" and "banana". –  Mehdi Anis Apr 19 '10 at 21:15
    
@Hun1Ahpu: (continued) this RegEx captured word.exe perfectly. and If(a>b?1,0) was captured as "If(a>b?1,0)." due to the terminating FullStop (.). I can manually traverse each word, Find+Omit trailing Comma, FullStop, Exclamation, Brackets etc. but if that can be handled by RegEx that would be 100% perfecrt for me. Thanks for the 'so far' best answer! –  Mehdi Anis Apr 19 '10 at 21:16
    
[\w(?!\S)\.] is a character class that matches any one character that is: a word character (\w); a non-whitespace character (\S); or one of (, ?, !, ), or .. If this regex works at all for you, @Mehdi, it's by accident; you'll get exactly the same results if you use \S+. –  Alan Moore Apr 20 '10 at 6:33
    
@Alan Moore: YES! You are right. \S+ also gives the same result as [\w(?!\S)\.]+ I will accept this answer as my solution as it is the closest to my need. –  Mehdi Anis Apr 21 '10 at 15:29

I tried to post my code on COMMENT section, but the it was too long for that. I am replying my own question by the ANSWER really came from Hun1Ahpu & Alan Moore.

I am pasting my code on how I am getting rid of trailing punctuation mark from a word.

Private mstrPunctuations As String = ",.'""`!@#$%^&*()_-+=?"
Dim parser As New Regex("\S+")
        Me.mintWordCount = parser.Matches(CleanedSource).Count
        For Each Word As Match In parser.Matches(CleanedSource)
            Dim NeedChange As Boolean = False
            For Each aChar As Char In Me.mstrPunctuations.ToCharArray()
                If Word.Value.EndsWith(aChar) Then
                    NeedChange = True
                    Exit For
                End If
            Next
            If NeedChange Then
                SetStringStat(Word.Value.Substring(0, Word.Value.Length - 1))
            Else
                SetStringStat(Word.Value)
            End If
        Next
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This expression has pretty good (although not perfect) results based on Expresso's default sample text:

((?:\w+[.\-!?#'])*\w+)(?=\s)
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This regEx didn't capture word.exe. i want word.exe as a word. It took 'statment' as the last word, doesnt include anything after that. So If(a>b?1,0) part is totally ignored. But I still want that part as a word. Thanks for the post. –  Mehdi Anis Apr 19 '10 at 20:52
    
Hmmm. Sounds like I need to try harder! –  Damian Powell Apr 19 '10 at 21:31

Not a regular expression as such, but you could just do something like:

Dim words() As String = myString.Replace(". ", " ").Split(" "c)

(Code written from memory so probably won't compile exactly like that)

Edit: Realised that the code could be simplyfied.

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@ho: Your solution doesn't cover sentences ending with "?" or "!". I will use replace+Split as the last resort. –  Mehdi Anis Apr 19 '10 at 20:55

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