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Editorial Team
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Asked: 2026-06-01T05:14:47+00:00

I need to replace every instance of any text in square brackets with something

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I need to replace every instance of any text in square brackets with something else, with each square bracket block being treated separately. For example, start with:

[quote author=joe link=topic=765.msg4476#msg4476 date=1330380346] This is the quoted text [/quote] This is the new post

being turned into:

** This is the quoted text ** This is the new post

I tried using the following: 

preg_replace('/\[.*\]/', '**', $msgtext);

What I get is:

** This is the new post

It seems to be matching from the first ‘[‘ character to the last ‘]’ character in the entire string, even if there are a bunch of separate blocks of square brackets in the larger text. How do I change my regex to replace each block between the square brackets individually? Obviously my .* in the regex is matching everything including right brackets until the last one, but I want it to stop at the first right bracket it encounters, and then repeat that logic throughout the entire string.

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1 Answer

  1. Editorial Team

    You need to use a non-greedy match, either by using the /U flag to make the whole pattern greedy:

    preg_replace('/\[.*\]/U', '**', $msgtext);

    or by using .*? (“zero or more, and preferably as few as possible”) instead of .* (“zero or more, and preferably as many as possible”):

    preg_replace('/\[.*?\]/', '**', $msgtext);

    Alternatively, you can use [^\]] (“any character except ]“) instead of . (“any character except newline”):

    preg_replace('/\[[^\]]*\]/', '**', $msgtext);
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