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I have string like

$string = "string_key::%foo%:%bar%";

, and array of params

$params = array("foo" => 1, "bar" => 2);

How can I replace this params in $string pattern? Expected result is

string_key::1:2
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What's the fastest depends on how big the search string is and how many replacement values you expect to have. –  Ja͢ck Jan 21 '13 at 12:25
    
Regular expressions are the fastes always.. –  Bondye Jan 21 '13 at 12:26
    
I try to solve it with regexp, but failed =( –  user1996959 Jan 21 '13 at 12:29
    
@user1996959 show us the code you've tried to make, someone might be able to fix it. –  Ja͢ck Jan 21 '13 at 12:32

3 Answers 3

up vote 1 down vote accepted

I'm not sure what will be the fastest solution for you (it depends on the string size and the number of replacement values you will use).

I normally use this kind of function to perform parameterized replacements. It uses preg_replace_callback and a closure to perform the replacement for each percent enclosed word.

function replaceVariables($str, $vars)
{
    // the expression '/%([a-z]+)%/i' could be used as well 
    // (might be better in some cases)
    return preg_replace_callback('/%([^%]+)%/', function($m) use ($vars) {
        // $m[1] contains the word inside the percent signs
        return isset($vars[$m[1]]) ? $vars[$m[1]] : '';
    }, $str);
}

echo replaceVariables("string_key::%foo%:%bar%", array(
    "foo" => 1,
    "bar" => 2
));
// string_key::1:2

Update

It's different from using str_replace() in cases whereby a percent enclosed value is found without a corresponding replacement.

This line determines the behaviour:

return isset($vars[$m[1]]) ? $vars[$m[1]] : '';

It will replace '%baz%' with an empty string if it's not part of the $vars. But this:

return isset($vars[$m[1]]) ? $vars[$m[1]] : $m[0];

Will leave '%baz%' in your final string.

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Seems interesting, i use string with up to 3-4 replacements, and second example works like I need. –  user1996959 Jan 21 '13 at 12:56
    
I like this way, and i like regexp. Thanks –  user1996959 Jan 21 '13 at 13:03
    
@user1996959 You're welcome :) –  Ja͢ck Jan 21 '13 at 13:04

First, you need to rewrite the $params array:

$string = "string_key::%foo%:%bar%";
$params = array("foo" => 1, "bar" => 2);
foreach($params as $key => $value) {
    $search[] = "%" . $key . "%";
    $replace[] = $value;
}

After that, you can simply pass the arrays to str_replace():

$output = str_replace($search, $replace, $string);

View output on Codepad

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I try this way, but it not works in next cases: $search = array( "%bar%","%foo%"); and $search = array( "%foo1%", %bar%","%foo%"); –  user1996959 Jan 21 '13 at 12:14
    
That should work just fine. I just updated my code so you don't have to rewrite the $params array yourself, can you try again? –  Jeroen Jan 21 '13 at 12:17
    
Yes, now it works, I'll use this too –  user1996959 Jan 21 '13 at 12:24
    
Great to hear! Don't forget the accept the answer ;) –  Jeroen Jan 21 '13 at 12:29

On a personal note, I did this one:

$string = "string_key::%foo%:%bar%";
$params = array("%foo%" => 1, "%bar%" => 2);
$output = strtr($string, $params);

You do not have to do anything else because if there is some value in the array or the string is not replaced and overlooked.

Fast and simple method for pattern replacement.

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