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I want to use regular expressions to match numbers like these:

58158
60360
98198

That is in the format ABCAB.

I use code below to match ABAB:

(([\d]){1,}([\d]){1,})\1{1,}

such as 5858 but how to match ABCAB(58158)?

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2 Answers 2

up vote 4 down vote accepted

For numbers in the format ABCAB:

(\d)(\d)\d\1\2

This places no restriction on A=B=C. Use negative look-ahead for A!=B!=C:

(\d)(?!\1)(\d)(?!\1|\2)\d\1\2

Edit:

There is no boundary matching so 58158 will be matched in 36958158:

$num=36958158;
preg_match('/(\d)(?!\1)(\d)(?!\1|\2)\d\1\2/',$num,$match);
echo ">>> ".$match[0];

>>> 58158
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Hi, I mean those numbers in ABCAB format. –  jlee Mar 11 '13 at 18:49
    
@jlee why do you want to use regex for that? Just split and compare fragments in the normal way you'd do it using your language's standard library. –  viraptor Mar 11 '13 at 18:51
    
@jlee formatting and some explanation goes along way. Can A=B=C here? –  iiSeymour Mar 11 '13 at 18:52
    
no, they are three different digit, but AB appears 2 times, and c between them. –  jlee Mar 11 '13 at 18:56
    
@sudo_O You can do it with lookaheads: /(\d)(?!\1)(\d)(?!\1|\2)\d\1\2/ regexr.com?3436s –  FrankieTheKneeMan Mar 11 '13 at 19:11

To match integers in the form ABCAB, use \b(\d\d)\d(\1)\b.

\b is a word boundary and \1 references the first group.

Example (in JavaScript so that it can be tested in the browser but it works in most regex solutions) :

var matches = '58158 22223 60360 98198 12345'.match(/\b(\d\d)\d(\1)\b/g);

gives

["58158", "60360", "98198"]
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I use it in php. –  jlee Mar 11 '13 at 19:08

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