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I want to match numbers like "100", "1.1", "5.404", IF they do not include a letter in front like this: "V102".

Here is my current regular expression:

(?<![A-Za-z])[0-9.]+

This is supposed to match any character 0-9. one or more repetitions, if prefix is absent (A-Za-z).

But what it does is match V102, as 02, so it just chips away V and one more letter and then the rest fits while it actually shouldn't match that case at all. How can I make it so it grabs all numbers, and then checks if the prefix is non existent?

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3  
Do you actually mean to match inputs or tokens within an input? The answer is highly dependent on that. For instance, in A 922, do you mean to match 922 or nothing? –  fge Dec 24 '12 at 17:17
    
Get rid of the backslash. –  Barmar Dec 24 '12 at 17:18
    
Match tokens within an input I guess. It can be a long string of random stuff, and it should match all numbers that does not include a letter in front of it. –  user1594138 Dec 24 '12 at 17:18
    
@Barmar I did thanks, but thats not how I have it in c#. I just added it to escape formatting, for whatever reason (? is the start of some Stackoverflow command. But then I guess its not needed after I put it in a code box. –  user1594138 Dec 24 '12 at 17:20

6 Answers 6

up vote 4 down vote accepted

Add digits and decimal point to your negative lookbehind:

(?<![A-Za-z0-9.])[0-9.]+

This will force all matches to start with a non-digit and non-letter (i.e., a space or other separator). That way the end of a number will not be a valid match either.

Demo: http://www.rubular.com/r/EDuI2D9jnW

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This works thanks! –  user1594138 Dec 24 '12 at 17:22

Try the regex:

(?<![A-Za-z0-9])[0-9.]+
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This works thanks, mellamokb submitted almost the exact same thing a few seconds before. So I'll chose him. –  user1594138 Dec 24 '12 at 17:23
2  
You need decimal point in your negative lookbehind as well, otherwise it will incorrectly match .00 in F1.00 (example: rubular.com/r/jGdtWa5k2a) –  mellamokb Dec 24 '12 at 17:25
    
@mellamokb Good point, missed that. You've got it in the answer that will be accepted. –  Barmar Dec 24 '12 at 17:26

A Non-Regex solution.

If you have the following string, then you can use double.TryParse to see if the string is a double. Try:

string str = "100 1.1 V100 d333 ABC 1.1";
double temp;
string[] result = str.Split().Where(r => (double.TryParse(r, out temp))).ToArray();

Or if you need a double array in return then:

double[] numberArray = str.Split()
                          .Where(r => double.TryParse(r, out temp))
                          .Select(r => double.Parse(r))
                          .ToArray();
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1  
He only said to reject numbers with a letter prefix. This solution will reject numbers with any non-numeric prefix. –  Barmar Dec 24 '12 at 17:30

Try using the caret ^ operator. This operator indicates that you want your pattern to start at the beginning of the input. For example ^[0-9.]+ will match inputs that begin with a digit or a . and has any number of them. Note that this pattern does not match only numbers, as it matches also patterns with more then 1 dot, for example 2.00.2, which is not a valid number.

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could you possibly be able to use word boundaries?

\b[0-9\.]+\b
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That won't work for decimals. –  mellamokb Dec 24 '12 at 17:20

If you don't want letters or spaces anywhere in your string, then this should work:

^[0-9.]+$
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