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I am having some problem with my regular expression in preg_replace function. My code is as below.

$html = preg_replace("/{.*:C/", "func_call(", 'Hi Kevin. Your address is {Address:S111}. Your customer name is {Customer:C111}. Your customer id is {CustomerId:C1112}. You use laptop brand {Laptops:I4}. Thanks.');

print_r($html);

I am trying to replace {Customer:C111} by func_call(1111} and {CustomerId:C1112} by func_call(1112}. So I am expecting to get

Hi Kevin. Your address is {Address:S111}. Your customer name is func_call(1111}. Your customer id is func_call(1112}. You use laptop brand {Laptops:I4}. Thanks.

As you can see everything in the format {anything:Cnumber} will need to be replaced by func_call(number}

Currently am getting

Hi Kevin. Your address is func_call(1112}. You use laptop brand {Laptops:I4}. Thanks.

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5 Answers

up vote 1 down vote accepted
php > $str = 'Hi Kevin. Your address is {Address:S111}. Your customer name is {Customer:C111}. Your customer id is {CustomerId:C1112}. You use laptop brand {Laptops:I4}. Thanks.';
php > echo preg_replace('#\{\w+:C(\d+)\}#', 'func_call(\\1)', $str);
Hi Kevin. Your address is {Address:S111}. Your customer name is func_call(111). Your customer id is func_call(1112). You use laptop brand {Laptops:I4}. Thanks.
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Oh, wait, I misread - you need func_call(123*}*, not func_call(123*)* ? –  shesek Sep 6 '11 at 6:19
    
Hey cool that one works. Thanks mate! –  Kevin Joymungol Sep 6 '11 at 6:48
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Try

/{\w+:C/

As your regex. .* is greedy, it will consume as much as it can.

This a very weird looking thing to do BTW.

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+1 for noting the weirdness... –  Jack Maney Sep 6 '11 at 6:19
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You need to switch to the non-greedy version of *.

Try this:

$html = preg_replace("/{.*?:C/", "func_call(", 'Hi Kevin. Your address is {Address:S111}. Your customer name is {Customer:C111}. Your customer id is {CustomerId:C1112}. You use laptop brand {Laptops:I4}. Thanks.');
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I thought about this, but it will still fail, won't it? Wont the .*? consume Address:S111}. Your customer name is {Customer? It's not greedy so it won't consume to the very last :C but it will still start after the first {, no? Or does non-greedy search for the shortest match if there are multiple? I'm not sure. I thought it just meant it would stop at the first match. –  Mark Sep 6 '11 at 6:24
    
It works okay because it is followed by a colon. The regex .*?: will consume all characters up until the first colon. Another way to do this is [^:]*:. Does that help? –  Ray Toal Sep 6 '11 at 6:31
    
[^:]*: would work, yes. The other way isn't just followed by a colon though, it's followed by :C, so in a example like {a:B} {a:C} it would start at a and go to :C, I believe. –  Mark Sep 6 '11 at 15:53
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$html = preg_replace("/\{([^:]+)\:([^\}]+)\}/", "func_call(\$2)", 'Hi Kevin. Your address is {Address:S111}. Your customer name is {Customer:C111}. Your customer id is {CustomerId:C1112}. You use laptop brand {Laptops:I4}. Thanks.');

"search for {, followed by anything but :, remember it in $1, then match the first : followed by anything but }, remember it in $2. replace the while match with func_call($2)

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Thanks for the tip. Was quite useful –  Kevin Joymungol Sep 6 '11 at 6:50
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if you wish you can do this without preg_replace something like this

$string ="Hi Kevin. Your address is %s. Your customer name is %s. Your customer id is %s. You use laptop brand %s. Thanks.'";
    $string = sprintf($string,'{Address:S111}','{Customer:C111}','{CustomerId:C1112}','{Laptops:I4}');
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