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I would like to check if a digit appears a set amount of times at the end of a number, say 2 times. The regex should probably say something like "group[0-9] 2 times at end", and I could have a PHP variable inserted into the regex indicating the 'amount of repetition', replacing the 2.

What regex expression should I use?

P.S: Hopefully this snippet of PHP code can help verify if the expression, which should check if any digit is repeated 2 times at the end of a number, is correct.



    $Result = preg_match($Regex,$Input[$TestEntry]);
        echo "Got ".$Result.", expected ".$CorrectOutput[$TestEntry]." - Good, seems to be working for " . $Input[$TestEntry] . ".<br>";
        echo "Got ".$Result.", expected ".$CorrectOutput[$TestEntry]." - Sorry, not working for " . $Input[$TestEntry] . ".<br>";

Thanks in advance!

Answer is most probably the following, thanks a lot:

$Repetition = 3; //Number of times a digit repeats at the end of the number (min. 2)
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3 Answers 3

up vote 2 down vote accepted

Tried many times and finally get it to work:


Passed all your test cases :)

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Wow, certainly looks impressive! I still get "Sorry, not working for 123455." and "Sorry, not working for 99." when using it, though, hmm.. – Chris Dec 17 '11 at 13:46
That's because the site you tested on are taking something wrong in " and \, I run this code on my own machine using php cli is getting correct answer, and you should change " to ' on that site so that you would get all 5 correct too :) ( e.g. $Regex='/(^|.)(^|(?!\\1))(.)\\3$/'; on that site.) – Felix Yan Dec 17 '11 at 13:53
Not a clue how you ever found out about that, but you're right! Working beautifully now, thank you so much! – Chris Dec 17 '11 at 13:57

You can try this one , it's simple and easy to analyzing


But, this code is only for the site you give( the origin regex is

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Alright, in what way should I change it to look for 3, 4, 5 or more repetitions instead of just 2? Should I just change the {2}? (Edit: Just tried doing that, didn't seem to work) – Chris Dec 17 '11 at 14:46
You need this one instead of it:(?:^(\d)\1{1}$)|(?:^.*(\d)(?!\2{2})(\d)\3{2}$), the number in {} you need change it – freefcw Dec 17 '11 at 14:47
Which one? There's nothing after the : it seems. – Chris Dec 17 '11 at 14:50
sorry, I pressed ENTER – freefcw Dec 17 '11 at 14:52
Just FYI, if you want to match more than 2 using the regex in my post, just add {2} after \\3 to match 3, or {3} to match 4, etc. – Felix Yan Dec 17 '11 at 14:55

This regexp catches 2 or more 9's at the end of a string:


The 9 is what to look for, {2,} means "two or more times" and \Z tells to look only at the end of a string.

Maybe this will help you get started.

This would concretely look like:

$subject = "12389798712899";
$pattern = '/9{2,}\Z/';
preg_match($pattern, substr($subject,3), $matches);

This should print an array $matches that has one element, i.e. the searched expression was found one time.

And to use the expression in your test case you'd use a number range, as you are testing against any single digit number:

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Tried [0-9]{2}\Z ,but that didn't work either, unfortunately. Could you please explain what's wrong? – Chris Dec 17 '11 at 13:20
Because it only guarantees the two chars at ending are both matching [0-9], and that's surely true for all your test cases :) – Felix Yan Dec 17 '11 at 13:38

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