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I have a string and i want to modify all 4 digit numbers and inserting colon between. Example: 1320 will become 13:20

$data = "The time is 1020 and the time is 1340 and 1550";

I'm thinking to use preg_match('/[0-9]{4}/', '????', $data);

But not sure how to pass the same value again in the preg?

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    Your preg_match usage is backwards, parameter 2 is the string to search, parameter 3 is the match. You could do $match[0] . $match[1] . ':' . $match[2] . $match[3]. Answer below seems cleaner though. Apr 6, 2019 at 12:38

2 Answers 2

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One way could be to use preg_replace instead and use capturing groups to capture 2 times 2 digits (\d{2})(\d{2}) between word boundaries \b

In the replacement use the 2 capturing groups using $1:$2

$data = "The time is 1020 and the time is 1340 and 1550";
$data = preg_replace('/\b(\d{2})(\d{2})\b/', "$1:$2", $data);
echo $data;

Result:

The time is 10:20 and the time is 13:40 and 15:50

Php demo

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You don't need to use capture groups, you merely need to seek the qualifying 4-digit substrings and target the zero-length position in the middle of the substring.

Code: (Demo)

$data = "The time is 1020 and the time is 1340 and 1550";    
echo preg_replace('~\b\d{2}\K(?=\d{2}\b)~', ':', $data);

Output:

The time is 10:20 and the time is 13:40 and 15:50

\b is a word boundary which ensures you're match the first digit in the sequence
\d{2} matches the first two digits
\K "restarts the full string match" -- effectively forgets the previous two digits
(?=\d{2}\b) is a lookahead for two digits not followed by a digit.

preg_replace() replaces the zero-length position with the colon.


If you wanted to improve the validation with this replacement, you could specify some known character ranges like this:

echo preg_replace('~\b[0-2]\d\K(?=[0-5]\d\b)~', ':', $data);

Of course the above isn't 100% reliable because it would match times like 2900. Validating everything between 0000 and 2400 gets considerably hairier:

echo preg_replace('~\b(?:(?:(?:[01]\d|2[0-3])\K(?=[0-5]\d\b))|(?:24\K(?=00\b)))~', ':', $data);

*note, I don't like the inclusion of 2400, but I have read arguments claiming that it is a valid time. This is why I am including it.

If you want to omit 2400 as a valid value, then it is a bit more manageable (0000 - 2359):

echo preg_replace('~\b(?:[01]\d|2[0-3])\K(?=[0-5]\d\b)~', ':', $data);

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