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I have this RegEx for C# ASP.NET MVC3 Model validation:

[RegularExpression(@"[0-9]*\,?[0-9]?[0-9]")]

This works for almost all cases, except if the number is bigger than 100. Any number greater than 100 should show error. I already tried use [Range], but it doesn't work with commas.

Valid: 0 / 0,0 / 0,00 - 100 / 100,0 / 100,00.

Invalid (Number > 100).

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How are you receiving this value? Why wouldnt int.TryParse() work? –  paqogomez Nov 27 '13 at 18:44
1  
Further to @paqogomez' suggestion, you can see it in action here: stackoverflow.com/questions/1824326/… –  remus Nov 27 '13 at 18:49
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2 Answers 2

Not sure if zero's are only optional digits at the end but

 #  (?:100(?:,0{1,2})?|[0-9]{1,2}(?:,[0-9]{1,2})?)

 (?:
      100 
      (?: , 0{1,2} )?
   |  
      [0-9]{1,2} 
      (?: , [0-9]{1,2} )?
 )

Zero's only option at end

 #  (?:100|[0-9]{1,2})(?:,0{1,2})?

 (?:
      100 
   |  [0-9]{1,2} 
 )
 (?: , 0{1,2} )?

And, the permutations for no leading zero's except for zero itself

 # (?:100(?:,0{1,2})?|(?:0|[1-9][0-9]?)(?:,[0-9]{1,2})?) 

 (?:
      100 
      (?: , 0{1,2} )?
   |  
      (?:
           0
        |  
           [1-9] [0-9]? 
      )
      (?: , [0-9]{1,2} )?
 )


 # (?:100|0|[1-9][0-9])(?:,0{1,2})? 

 (?:
      100 
   |  
      0
   |  
      [1-9] [0-9] 
 )
 (?: , 0{1,2} )?
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1  
You need to include start and end of string controls, otherwise it will still match on larger numbers. Quick and dirty, "^(?:100|[0-9]{1,2})($|,0{1,2})$" works. –  neilh Nov 27 '13 at 19:27
    
The OP didn't show ^$ anchors in the example. I won't either. And the quick & dirty regex obfuscates the anchors making it hard to read, while ^(?:100|[0-9]{1,2})(?:,0{1,2})?$ is ok because backtracking doesn't really have anywhere to go. –  sln Nov 27 '13 at 20:43
1  
And, I get no votes around here, so ... –  sln Nov 27 '13 at 20:50
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Here's a RegEx that matches your criteria:

^(?:(?:[0-9]|[1-9]{1,2})(?:,[0-9]{1,2})?|(?:100)(?:,0{1,2})?)$

(Given your use case, I have assumed that your character sequence appears by itself and is not embedded within other content. Please let me know if that is not the case.)

And here's a Perl program that demonstrates that RegEx on a sample data set. (Also see live demo.)

#!/usr/bin/env perl

use strict;
use warnings;

while (<DATA>) {
    chomp;

    # A1 => An integer between 1 and 99, without leading zeros.
    #      (Although zero can appear by itself.)
    #
    # A2 => A optional fractional component that may contain no more
    #       than two digits.
    #
    # -OR-
    #
    # B1 => The integer 100.
    #
    # B2 => A optional fractional component following that may
    #       consist of one or two zeros only.
    #

    if (/^(?:(?:[0-9]|[1-9]{1,2})(?:,[0-9]{1,2})?|(?:100)(?:,0{1,2})?)$/) {
    #           ^^^^^^^^A1^^^^^^    ^^^^^A2^^^^      ^B1    ^^^B2^^

        print "* [$_]\n";
    } else {
        print "  [$_]\n";
    }
}

__DATA__
0
01
11
99
100
101
0,0
0,00
01,00
0,000
99,00
99,99
100,0
100,00
100,000
100,01
100,99
101,00

Expected Output

* [0]
  [01]
* [11]
* [99]
* [100]
  [101]
* [0,0]
* [0,00]
  [01,00]
  [0,000]
* [99,00]
* [99,99]
* [100,0]
* [100,00]
  [100,000]
  [100,01]
  [100,99]
  [101,00]
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That's exactly what I'm looking for, thank you! –  WagnerMaurer Nov 28 '13 at 10:27
2  
One thing the OP states is Valid: 0,00 - 100. I can only assume > 100 would be 100.99 which your regex matches. Maybe you can provide for that with a slight modification - ^(?:[0-9]|[1-9][0-9]|100(?=(?:,0{1,2})?$))(?:,[0-9]{1,2})?$ , +1 Anyway –  sln Nov 28 '13 at 18:21
    
@sln - Right you are. And your regex works perfectly! However, I revised my regex somewhat differently so that the terminating $ would appear only once. My approach: A) First check for one or two-digits and an optional fractional part, and then B) check for the number 100 and its optional fractional part (which may consist of one or two zeros only). I also included additional data samples. If you see any disadvantages with my revised regex vs. yours, please let me know. –  DavidRR Nov 29 '13 at 16:22
    
WagnerMaurer - First, I have just upvoted your question since working up a solution proved quite interesting to me. Second, as someone new to Stack Overflow, please consider upvoting and then accepting my answer (since it proved to be what you were looking for). From the Stack Overflow FAQ, please see How does accepting an answer work?.You can also find the entire Stack Overflow FAQ here. Finally, consider upvoting the sln's comment since @sln identified a critical gap in my initial answer. –  DavidRR Nov 29 '13 at 16:36
    
@DavidRR I really think that advising someone to upvote a particular comment is taking it all a bit far.. –  OGHaza Nov 29 '13 at 16:49
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