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I'm searching for strings within strings using Regex. The pattern is a string literal that ends in (, e.g.

# pattern
" before the bracket ("

# string
this text is before the bracket (and this text is inside) and this text is after the bracket

I know the pattern will work if I escape the character with a backslash, i.e.:

# pattern
" before the bracket \\("

But the pattern strings are coming from another search and I can not control what characters will be or where. Is there a way of escaping an entire string literal so that anything between markers is treated as a string? For example:

# pattern
\" before the ("

The only other option I have is to do a substitute adding escapes for every protected character.


re.escape is exactly what I need. I'm using regexp in Access VBA which doens't have that method. I only have replace, execute or test methods.

Is there a way to escape everything within a string in VBA?

Thanks

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4  
You don't need to use regex when your pattern is a constant string. –  NullUserException Sep 16 '10 at 1:27
    
His pattern isn't a constant string. Try reading it again. –  KevenDenen Sep 16 '10 at 20:14

4 Answers 4

up vote 1 down vote accepted

Maybe write your own VBA escape function:

Function EscapeRegEx(text As String) As String
    Dim regEx As RegExp
    Set regEx = New RegExp

    regEx.Global = True
    regEx.Pattern = "(\[|\\|\^|\$|\.|\||\?|\*|\+|\(|\)|\{|\})"

    EscapeRegEx = regEx.Replace(text, "\$1")
End Function
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Perfect! Exactly what I needed. Thanks! –  Mark Sep 20 '10 at 17:23

You didn't specify the language, but it looks like Python, so if you have a string in Python whose special regex characters you need to escape, use re.escape():

>>> import re
>>> re.escape("Wow. This (really) is *cool*")
'Wow\\.\\ This\\ \\(really\\)\\ is\\ \\*cool\\*'

Note that spaces are escaped, too (probably to ensure that they still work in a re.VERBOSE regex).

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I'm pretty sure that with the limitations of the RegExp abilities in VBA/VBScript, you are going to have to replace the special characters in your pattern before using it. There doesn't seem to be anything built into it like there is in Python.

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Thanks for getting back. I ended up writing a wrapper round replace to escape all special characters: Public Function Escape(ByVal strString As String) As String Dim re As New RegExp Dim EscapeChars() As Variant EscapeChars = Array("\\", "*", "\+", "\?", "\|", "\{", "[", "(", ")", "\^", "\$") For Index = 0 To UBound(EscapeChars) re.Pattern = EscapeChars(Index) re.Global = True strString = re.Replace(strString, EscapeChars(Index)) Next Escape = strString End Function –  Mark Sep 17 '10 at 16:40

The following regex will capture everything from the beginning of the string to the first (. The first captured group $1 will contain the portion before (.

^([^(]+)\(

Depending on your language, you might have to escape it as:

"^([^(]+)\\("
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I don't think this is an actual answer to the question: the literal that is searched for by regex comes from an external source and can contain characters that need to be escaped because they have meaning in regex. –  peSHIr Sep 16 '10 at 6:15
    
exactly, I need to effectively insert \ in front of every character in the string. how do I do that in Regexp VBA? –  Mark Sep 16 '10 at 19:12

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