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I need to replace a word that starts with %.

For example Welcome to home | %brand %productName

hoping to split on words begining with % which would give me { brand, productName }.

My regex is less than average so would appreciate help with this.

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It would be easier if you used %brand% %productName% –  Christophe Feb 23 '12 at 7:26
    
Are you trying to get an array containing just "brand" and "productName" or are you trying to replace these words, if so what are you trying to replace them with? –  Sam Greenhalgh Feb 23 '12 at 8:00
    
dont forget to mark answer as acceted if you got the solution you want –  Pranay Rana Feb 23 '12 at 10:58

3 Answers 3

up vote 1 down vote accepted

Nothing wrong with string.split approach, mind you, but here's a regex approach:

string input = @"Welcome to home | %brand %productName";
            string pattern = @"%\S+";
            var matches = Regex.Matches(input, pattern);
            string result = string.Empty;
            for (int i = 0; i < matches.Count; i++)
            {
                result += "match " + i + ",value:" + matches[i].Value + "\n";
            }
            Console.WriteLine(result);
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thanks this was what I was looking for. need to brush up on my regex. I did previously use the string.split approach but was looking for a less cumbersome method. Thanks again –  Christo Feb 23 '12 at 13:11

Following code might help you :

string[] splits = "Welcome to home | %brand %productName".Split(' ');
List<string> lstdata = new List<string>();
for(i=0;i<splits.length;i++)
{
   if(splits[i].StartsWith("%"))
     lstdata.Add(splits[i].Replace('%',''));
}
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Try this:

(?<=%)\w+

This looks for any combination of word characters immediately preceded by a percent symbol.

Now, if you're doing search and replace on these matches, you'll probably want to remove the % sign as well, so you'd need to remove the lookbehind group and just have this:

%\w+

But in doing so, your replacement code would need to trim off the % sign from each match to get the word by itself.

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3  
You can use %(\w+) to match the group and replace whatever is needed. –  Aram Kocharyan Feb 23 '12 at 7:23

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