1

I have a string like:

varA*varB%+Length('10%')

I want to replace all the "%" characters not within single quotes with "/100" to end up with

varA*varB/100+Length('10%')

Methinks this is a job for a RegEx?

4
  • somehow i doubt this is doable with regex, especially if there can be multiple nested levels of " and '.
    – driushkin
    Commented Sep 23, 2011 at 14:26
  • to simplify - anything within nested levels of quotes should NOT be replaced
    – GreyCloud
    Commented Sep 23, 2011 at 14:31
  • @Guillaume can you explain why?
    – GreyCloud
    Commented Sep 23, 2011 at 14:32
  • blogs.msdn.com/b/jaredpar/archive/2008/10/15/…
    – Guillaume
    Commented Sep 23, 2011 at 14:44

3 Answers 3

5

non regex solution and not that dirty either ;)

    string a = "varA*varB%+Length('10%')";
    string[] b = a.Split('\'');
    string c = string.Empty;
    int i = 0;
    foreach (string sbs in b)
    {
        c += i%2==0?sbs.Replace("%","/100"):"'" + sbs + "'";//for the every odd value of i "%" is within single quotes
        i++;
    }
3
  • hehe, thanks for this, looks like regexes are pretty unpopular :)
    – GreyCloud
    Commented Sep 23, 2011 at 14:18
  • @NikoG., This is much better than mine. One issue - this is replacing all single quotes which is not a requirement. Once that's fixed, I'll delete my answer in favor of yours. Nice job!
    – James Hill
    Commented Sep 23, 2011 at 14:19
  • GreyCloud you are welcome... @James yep, I missed that, will edit
    – Nika G.
    Commented Sep 23, 2011 at 14:22
1

A slightly more efficient solution then the accepted answer.

        string a = "varA*varB%+Length('10%')";
        string[] parts = a.Split('\'');
        for (int i = 0; i < parts.Length; i = i + 2)
        {
            parts[i] = _parts[i].Replace("%","/100");
        }
        a = string.Join("'", parts);
-1

Try the one below. You have to use group and back reference in regex. I've tried it in Ultraedit with Perl regex syntax. It worked well.

%([^']) --> /100\1

This regex means: find a % which is not followed by ', like %a will be matched. Then replace % with /100 and the one character which follows %. In this case, it is a.

string str = "varA*varB%+Length('10%')";
string output=Regex.Replace(str, "%([^'])", @"/100$1");

string str2 = "varA*varB%+Length('10%')+varA*varB%+Length('10%')+bob%";
string output2 = Regex.Replace(str2, "%([^']|$)", @"/100$1");
6
  • Regex.Replace(@"a%b'c%e'e",@"%([^'])", "/100"); gives me a/100'c/100'e which is incorrect as it replaces the % in quotes it also swallowed some characters :(
    – GreyCloud
    Commented Sep 23, 2011 at 13:49
  • You missed \1 in "/100\1". You can verify it here regexhero.net/tester . It is .net regex test tool. I just tried. It worked. Commented Sep 23, 2011 at 13:54
  • So in your question you did not mean % just followed by '? It could be like 'aaa%10bbb' or '10%', right? Commented Sep 23, 2011 at 14:05
  • ah is see where you went wrong, i will ammend the question. I just wanted to match the "%" character
    – GreyCloud
    Commented Sep 23, 2011 at 14:11
  • C# use $ for back reference, not \ Commented Sep 23, 2011 at 14:17

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