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I've been trying to do the following using VBs Regular Expression object but could not find an easy way to do it. Is there anyone who could provide some suggestions?

For example, I have a string "12<56>89", I would like to get the string inside the "<>" which should be "56" in this case. What I'm currently doing is I try to find the expression "<\d+>" which will return <56>. Then I try to find the expression "\d+" from the result of the first match which will return 56.

I don't like this way because it needs to call the function twice. I'm wondering if it's possible to get the string inside the "<>" using just one regular expression? Thank you!

Thanks, Allen

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2 Answers 2

up vote 0 down vote accepted

Use the expression "<(\d+)>"

You can then access all matches as a collection. Your regex can match more than once if you set RegEx.Global = True. The first match is found in var(0), second at var(1). Submatch groups are found at var(0).SubMatches(0), etc. If you're only doing it once, you can one line it:

Dim RegEx : Set RegEx = New RegExp
RegEx.Pattern = "<(\d+)>"
Dim strTemp : strTemp = "12<56>89"
WScript.Echo RegEx.Execute(strTemp)(0).SubMatches(0)

Test out your regular expressions here: http://www.regular-expressions.info/vbscriptexample.html

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Thanks Jeff. How can I return the group Variable $1? What I'm really trying to do is to find a string between two strings but excluding the two boundary strings from the result. I trid the lookaround expression "(?<=<)\d+(?=>)" but it did not seem to work. Any more suggestions? Thanks, Allen –  Allen Feb 10 '11 at 0:49
    
Ah, sorry. My answer was for perl. Updated for vbscript –  Jeff Lamb Feb 10 '11 at 6:49
    
It works! Thank you very much for your help, Jeff. Also, thanks for sharing the link for testing VBs Regular Expressions. –  Allen Feb 10 '11 at 11:36

Use the expression <(\d+)>. Execute the regular expression using

Set matches = expr.Execute(text)
If matches.Count > 0 Then
    result = matches(0).Submatches(0)
End If

The Submatches collection contains strings that correspond to the parenthesis groupings in the expression.

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Thank you for your help, Tmdean. I didn't think of using the Submatches collection. This works perfectly! –  Allen Feb 10 '11 at 11:41

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