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How get the number this string text?

string stringvalue = "[3=000][98=000][299=000][120=000][012=000][92=000][93=000][04=000]";

        string pattern = "([)([0-2][0-9][0-9])(=)";
        Regex rgx = new Regex(pattern, RegexOptions.IgnoreCase);
        MatchCollection matches = rgx.Matches(stringvalue);
        if (matches.Count > 0)
        {
            Console.WriteLine("=== Sonuç ===");
            foreach (Match match in matches)
                Console.WriteLine("value={0}", match.Value.Replace("[", "").Replace("=", ""));
        }
        else
        {
            Console.WriteLine("bulunamdı");
        }

Is anaother vay string pattern = "([)([0-2][0-9][0-9])(=)"; this is pattern(No replace)

share|improve this question
    
I am not sure whether I understand this correctly. In what kind of data / collection type do you store these integer numbers? Is it a int[], or a List<string>, or something else? And is your goal to transform that list into a string like the last line? What have you tried so far? –  stakx Mar 31 '13 at 21:49
    
stackoverflow.com/questions/how-to-ask –  I4V Mar 31 '13 at 23:01
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closed as not a real question by Travis J, Daniel Kelley, I4V, Tim Medora, Iswanto San Apr 1 '13 at 1:57

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

3 Answers

\[(\d+)=\d+\]

The numbers you are looking for will be in the first group of each Match:

var input = "[03=000][98=000][999=000][120=000][01=000][92=000][93=000][1004=000]";
var regex = @"\[(\d+)=\d+\]";

var matches = Regex.Matches(input, regex);

foreach (Match m in matches)
{
    Console.WriteLine(m.Groups[1].Value);
}
share|improve this answer
    
Thanks for share. –  Mazhar Apr 1 '13 at 9:06
    
Markus I neeed 03 98 999 120 01 92 93 1004 only values... –  Mazhar Apr 1 '13 at 18:12
    
I try regular expression above my code and no replace. –  Mazhar Apr 1 '13 at 18:24
    
What exaclty is your problem? The above code gives you exactly these values. –  Markus Palme Apr 2 '13 at 15:53
    
I don't use replace method only pattern gives values. –  Mazhar Apr 3 '13 at 5:30
show 1 more comment

I sometimes found regular expressions a little bit nasty. You can just consider using naive string processing instead of matching regular expression. This will certainly do the job for your input.

string val  = "[03=000][98=000][999=000][120=000][01=000][92=000][93=000][1004=000]";

string[] numbers = val.Split(new []{ '[', ']', '=' }, StringSplitOptions.RemoveEmptyEntries)
                      .Where((v, i) => i % 2 == 0)
                      .ToArray();

Console.WriteLine(string.Join(Environment.NewLine, numbers));

prints:

03
98
999
120
01
92
93
1004
share|improve this answer
    
thanks for interest. –  Mazhar Apr 1 '13 at 9:07
    
I try regular expression above my code and no replace. –  Mazhar Apr 1 '13 at 18:22
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If I understand you right, you are saying the bottom is all one string? If so, no need for Regex (though you could use it), but I would just use substrings since you seem to want them separate.

i.e. string str03 = ThatString.Substring(1,2);

str03 would equal "03"

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1  
How will you find all occurances using that approach? Also, the numbers differ in length. –  Markus Palme Mar 31 '13 at 21:45
    
The first argument in Substring() is the index in the string where you want to start capturing, and the second is where you want to end. So you just need to toggle those. –  Jay Morgan Mar 31 '13 at 21:50
    
Toggle based on what? –  Markus Palme Mar 31 '13 at 21:51
    
What numbers you need. For example, suppose you have this string : test = "abcdefg" and you needed "efg" you would just go : string fg = test.Substring(5,7); –  Jay Morgan Mar 31 '13 at 21:51
    
I won't ask how you get all numbers OP asks, and give directly a -1 –  I4V Mar 31 '13 at 22:04
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