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I need to make a Regular expression that will match the character "N" when it is alone. So far, I've come up with the expression: "^[N]$" which seems to work in this example. It doesn't match on the other three, just the "N".

        public static void Main()
        {
            string[] words = new string[] { "42ND", "N", "WATERING", "ANONYMOUS"};

            string pattern = @"^[N]$";

            foreach (string word in words)
            {
                if( Regex.IsMatch(word, pattern))
                {
                    Console.WriteLine(word + " Is a match"); 
                }
            }
        } 

Can anyone pick out any problems with this or provide a better one? Thank you!

Edit for a little clarity: I'm just looking to match on the letter "N" and nothing more. It should not match on "NN", "NNN", or any variation and should not match on any words that contain the letter "N".

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because it is made to match a single "N" –  user2279126 Apr 16 '13 at 14:53
1  
word.IndexOf("N")>=0 or word.Contains("N") ? –  I4V Apr 16 '13 at 14:54
    
It's not clear from your question, do you want the other words to match? Or are you happy that only "N" matches? –  Nate Hekman Apr 16 '13 at 15:01
    
I just need only the "N" matches. –  Cuthbert Apr 16 '13 at 15:03
2  
This looks like a college project, if it is I would consider totally over-engineering it: add i18n, parallelism, security, and some premature optimizations. –  THX-1138 Apr 16 '13 at 15:14

3 Answers 3

If you're just trying to find an exact match to the string "N" then there's no need to use a regex!

if ( word == "N" ) ...
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Alternate LINQ syntax: foreach (string word in words.Where(word => word == "N")) { ... } –  Lâm Tran Duy Apr 16 '13 at 15:15

You could use \b (word boundary match) that way you could pick out all "single-N" words in a string (not sure if that's what you actually need, but the array of strings you have in the example suggests that might be the case).

using System;
using System.Diagnostics;
using System.Text.RegularExpressions;

namespace ConsoleApplication1 {
    internal class Program {
        private static void Main(string[] args) {
            var pattern = new Regex(@"\bN\b");
            const string input = "N foo N bar N";
            MatchCollection matches = pattern.Matches(input);
            Debug.Assert(matches.Count == 3);
            foreach (Match m in matches) {
                Console.WriteLine(m.Value);
            }
        }
    }
}
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the \bN\b gets my vote –  Andras Zoltan Apr 16 '13 at 15:04

You don't really need the character class ([ and ]) when it's only one character ^N$ means the same as ^[N]$.

What your regex is matching is a string that consists of a single character: N.

^ matches the start of a string and $ the end of it the only valid character in between is N, so it will only match the string N.


Update:

If all you're after is a string consisting of N, then you don't need regex at all, as other have suggested, use if (word == "N") or if you want to get any words consisting of N out of a larger string then you'd use \bN\b.

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what about \bN\b? Yours just matches any N that isn't surrounded by Ns - I believe the question asks for Ns 'on their own'. Granted that's a little bit ambiguous, since that could mean the whole string is 'N', or that any Ns surrounded by whitespace are required. –  Andras Zoltan Apr 16 '13 at 15:04
    
I just realized that that's what he's after, as the words are in an array it seemed absurd to want a regex for matching N as the regex would be N. If picking out words in a string that are N then \bN\b would do the job. –  rvalvik Apr 16 '13 at 15:10

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