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I try to match a string with a regex having the rule that they all start with 10.20

string str = @"10.20.30.1\r\n10.20.40.2\r\n10.20.50.3";
string pattern = @"(10\.20.+(\r\n)*)+";

var m = System.Text.RegularExpressions.Regex.Match(str, pattern);

However it only catches first line, i.e.:

Console.Write(m.ToString()); // prints 10.20.30.1,

EDIT: I try to differentiate the case where there is single or multiple lines. i.e. in the above example of str, if the user gives

string pattern = @"(10\.20.+)+";

it matches only first line, which I expect. what am I missing?

share|improve this question
    
Your code, for me, is correct: m.toString() = "10.20.30.1\r\n10.20.40.2\r\n10.20.50.3". Run the code you just posted again. –  hometoast Mar 13 '13 at 12:26
    
"if the user gives..." Is the user giving the IP addresses, or the pattern? –  Kenneth K. Mar 13 '13 at 12:35
    
@KennethK. pattern –  paul simmons Mar 13 '13 at 12:44
    
As I said in my answer, the problem is: . matches any single character except \n. –  MD.Unicorn Mar 13 '13 at 12:52

2 Answers 2

up vote 1 down vote accepted

Have you tried using Matches instead of Match. You're looking for multiple matches:

var matches = System.Text.RegularExpressions.Regex.Matches(
    "10.20.30.1\r\n10.20.40.2\r\n10.20.50.3",
    @"(10\.20.+(\r\n)*)+",
    RegexOptions.Compiled | RegexOptions.CultureInvariant);

Assert.AreEqual(3, matches.Count);

In reply to the comment below, to get all the matches as a string:

var match = System.Text.RegularExpressions.Regex.Match(
        "foo 10.20.30.1\r\n10.20.40.2\r\n10.20.50.3 bar",
        @"(10\.20\.\d{1,3}\.\d{1,3}(\r\n)*)+",
        RegexOptions.Compiled | RegexOptions.CultureInvariant)
    .ToString();

It's best to use a Regex that is as specific as possible, but still matches all your criteria. Since . matches everything except \n, there's still a solution to come up with something like @"(10\.20\.([^\r])+(\r\n)*)+". Though this will match 10.20.30.1\r\n10.20.40.2\r\n10.20.50.3 bar if you still have other information around it.

share|improve this answer
    
I am trying to get the whole string not the single lines –  paul simmons Mar 13 '13 at 12:21
    
I've edited my answer to get the whole string. –  Caramiriel Mar 13 '13 at 12:32

You defined your string as a verbatim string (with @ character):

string str = @"10.20.30.1\r\n10.20.40.2\r\n10.20.50.3";

so \ will not work as the escape character. Remove the @ from the beginning of the string definition.

The problem with your pattern is that .+ in @"(10\.20.+(\r\n)*)+" will consume the \r, and the remaining string starts with \n which deos not match (\r\n)*. The documentation says that dot (.):

Matches any single character except \n.

To avoid that, try to use a more accurate pattern to match numbers in parts of the IP address, as Caramiriel states in his answer.

You can also change the pattern to:

string pattern = @"(10\.20.+(\r\n?|\n)*)+";

which is more accurate to match new-line character.

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I think you are forgetting, though, that the regex engine will backtrack when the \n fails to match. The fact that .+ is used isn't the problem; it's the literal escaping of \r\n by way of @ that you mentioned. –  Kenneth K. Mar 13 '13 at 12:58
    
@KennethK. I guess not. Try the regex withoud @, and you see that it only matches the first IP. I tried other combinations with simple strings, and this was what I came to. Try Regex.Match("tall\r\ntill", "(t.+(\r\n)*)+"), and the length of the match is 5 (tall\r). –  MD.Unicorn Mar 13 '13 at 13:15
    
@MD.Unicorn, Kenneth is talking about the target string (str in your example). The regex string can go either way: "\n" gets converted by the C# compiler to a linefeed, which matches a literal linefeed; @"\n" remains the two-character sequence \n, which the regex compiler recognizes as the escape sequence for a linefeed. –  Alan Moore Mar 13 '13 at 13:55

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