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i am trying to implement a programme that counts the words in a multiline textbox as you type. I can get it counting the words until i press the "enter" key and tyoe a word. it does not recognise this. this is my code:

Private Sub TextBox1_TextChanged(ByVal sender As System.Object, _
    ByVal e As System.EventArgs) Handles TextBox1.TextChanged
  Dim str As String
  Dim i, l, words As Integer
  str = TextBox1.Text

  str = LTrim(str) 'removes blank spaces at the beginning of text
  str = RTrim(str) ' removes blank spaces at the end of text
  l = str.Length
  i = 0
  words = 0
  While (i < l)
    If str(i) = " " Then
      words = words + 1
      i = i + 1
      While str(i) = " "  ' removes more than 1  blank space
        i = i + 1
      End While
    Else
      i = i + 1
    End If

  End While

  words = words + 1 ' adds the last word

  TextBox2.Text = ("" & words)

End Sub 
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4 Answers 4

up vote 2 down vote accepted
Private Sub TextBox1_TextChanged(ByVal sender As System.Object, ByVal e As System.EventArgs) Handles TextBox1.TextChanged

    Static rex As New System.Text.RegularExpressions.Regex("\b", System.Text.RegularExpressions.RegexOptions.Compiled Or System.Text.RegularExpressions.RegexOptions.Multiline)

    Label1.Text = (rex.Matches(TextBox1.Text).Count / 2).ToString()

End Sub
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1  
A little background: regular-expressions.info/wordboundaries.html –  JeffO Feb 3 '12 at 1:48
    
That solved my problem but if i type the word "they're" , it counts it as 2 words. is there any way to allow apostrophes and fullstops to to be entered? –  user992520 Feb 3 '12 at 10:32
    
@user170705 Well, they're is two words... But if you don't think so, go with ron tornambe's answer by adding the allowed punctuation marks to the group: "[\w'.]+". –  GSerg Feb 3 '12 at 11:05
    
it worked. thanks everyone –  user992520 Feb 3 '12 at 12:05

Here's another regex solution:

Dim WordCount = New Regex("\w+").Matches(s).Count
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Why not change to regex that whole thing can be like this

Dim words As MatchCollection = Regex.Matches(value, "\s+")
words.Count
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That finds one word less, unless you put a space in the end of the string. It also counts punctuation as words (if separated with spaces). –  GSerg Feb 3 '12 at 1:36
    
@Raymund Much simpler with Regex! –  jordanhill123 Feb 3 '12 at 1:36

You need to remove the "return" key

Add these lines:

str = Replace(str, "chr(10)", "")  'Replaces  line feed
str = Replace(str, "chr(13)", "")  'Replaces carriage return

before

  str = LTrim(str) 'removes blank spaces at the beginning of text
  str = RTrim(str) ' removes blank spaces at the end of text 
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