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So I want my inputs to be one of the following:

0 = any integer

0, 00, 000, 0:0, 00:0, 000:0

Basically 0-999, followed be an optional colon and 0-9. The pattern I am using is

([0-9]|([0-9][0-9])|([0-9][0-9][0-9]))|(([0-9]|([0-9][0-9])|([0-9][0-9][0-9]))&&\3A&&[0-9])

Is this code pattern redundant, non-working, or wrong? Will it actually do what I want it to do? I would normally just run it and test it, but it takes a while to utilize and test the code with my application.

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closed as too broad by home, JB Nizet, Prince John Wesley, Jomoos, Dragonfly Mar 7 '14 at 5:57

There are either too many possible answers, or good answers would be too long for this format. Please add details to narrow the answer set or to isolate an issue that can be answered in a few paragraphs. If this question can be reworded to fit the rules in the help center, please edit the question.

4  
So you want us to test it for you? –  home Oct 8 '11 at 15:53
1  
You regex is wrong. Use an online tool/site or offline tools such as regexbuddy or expresso. –  FailedDev Oct 8 '11 at 15:56
    
When you have small independently testable items like this simply create a standalone program that calls it if you are not using JUnit or other. –  Romain Hippeau Oct 8 '11 at 16:13

4 Answers 4

Looking over it:

  • The && are no special characters, they have to be matched literally. Therefore this part of the RE will never match your examples.
  • The \3A should be \\x3A. Otherwise it would match the character with code 3 followed by an 'A'.
  • using the repetition quantifier {n,m} instead of multiple | is much easier to read and understand

    Pattern p = Pattern.compile("\\d{1,3}|\\d{1,3}:\\d");
    
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This is not correct. In case of 0 followed by : and a number there will be 2 matches instead of one because the first part of your regex will always match. –  FailedDev Oct 8 '11 at 17:39
    
@FailedDev: I can't follow. 0:0 will only be matched by the second part, because using Matcher.match the regex must match the complete input. The first part would not match the complete input. Proof: Adding three groups to my regex as in (\\d{1,3})|(\\d{1,3}):(\\d) shows that for 0:0 show, that group(1) is always null - only the second part matches. –  A.H. Oct 8 '11 at 17:55
    
I thought the input is the complete line : 0, 00, 000, 0:0, 00:0, 000:0 and not just an individual "set" –  FailedDev Oct 8 '11 at 18:29

First, you need to devise a regular expression to match every number between 0 and 999. Assuming 009 is a valid number you can basically match three sequences of digits ([0-9]), and make the first two optional:

[0-9]?[0-9]?[0-9]

The above regex will match 999, 9, 19, 009, but not 1234 or 9999.

If 009 is not a valid number, then you need to exclude the 0 from the first two groups above, yielding:

([1-9][0-9]|[1-9])?[0-9]

That is, if you have a hundreds digit, then it must not be 0 ([1-9]), and if you have a tens digit (but not a hundreds digit), then it must also not be 0 (the second [1-9] in the regex).

Finally, you need to include the optional part, which is basically a comma followed a digit, yielding the final expression:

([1-9][0-9]|[1-9])?[0-9](:[0-9])?

You can then run some simple tests with a simple standalone program:

public static void main(String... args) {
  Pattern p = Pattern.compile("(?:[1-9][0-9]|[1-9])?[0-9](?::[0-9])?");      
  System.out.println(p.matcher("999").matches());
  System.out.println(p.matcher("1234").matches());
  System.out.println(p.matcher("9").matches());
  System.out.println(p.matcher("19").matches());
  System.out.println(p.matcher("999:9").matches());
  System.out.println(p.matcher("12:99").matches());
}
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Thank you so much! I have been looking at online information, but it's always most helpful to get an explanation from a human! –  LibertasMens Oct 8 '11 at 16:36

Here is a working pattern and using JUnit, you could test it with some sample data. This code is expected input validation--so if you're trying to extract those values out of a string, then that's a different pattern and would need to test differently.

Pattern pattern = Pattern.compile("^\\d{1,3}(?::\\d)?$");

List<String> samples = Arrays.asList("0", "00", "000", "0:0", "00:0", "000:0");
List<String> failSamples = Arrays.asList("0000", "0000:0", "0:00", "00:00", "000:00");
for (String sample : samples)
{
  assertTrue(sample, pattern.matcher(sample).matches());
}
for (String failSample : failSamples)
{
  assertFalse(failSample, pattern.matcher(failSample).matches());
}
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Try this :

try {
    Pattern regex = Pattern.compile("\\d{1,3}(?::\\d)?");
    Matcher regexMatcher = regex.matcher(subjectString);
    while (regexMatcher.find()) {
        // matched text: regexMatcher.group()
        // match start: regexMatcher.start()
        // match end: regexMatcher.end()
    } 
} catch (PatternSyntaxException ex) {
    // Syntax error in the regular expression
}

It should get you going.

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Please note, that this question is also tagged as Java, so C# syntax and classes are not 100% compatible. –  A.H. Oct 8 '11 at 18:01
    
@A.H. thanks for the tip. Will edit answer. –  FailedDev Oct 8 '11 at 18:30

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