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I have string variable. It can be:
$string = '["image11.jpg"]';
Or:
$string = '["image11.jpg","image54.png"]';
Or:
$string = '["image11.jpg","image54.png"]';
Or:
$string = '["image11.jpg","image54.png","dfgr.rar"]';
And so on.
I need this variable as array, for example:
$arr[0] = 'image11.jpg';
Or:
$arr[0] = "image11.jpg";
$arr[1] = "image54.png";
Or:
$arr[0] = "image11.jpg";
$arr[1] = "image54.png";
$arr[2] = "dfgr.rar";
And so on.
Is there optimal code for that?

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6  
json_decode($str, TRUE). –  alex Nov 1 '12 at 9:18
    
Did you come up with that format yourself or is that JSON? –  deceze Nov 1 '12 at 9:19
    
json from javascript (jquery, ajax) –  serg Nov 1 '12 at 9:20
1  
possible duplicate of How to decode a JSON string in PHP? –  deceze Nov 1 '12 at 9:21
1  
Worst case, should your production server be running such an old version of PHP that it doesn't come with json_decode, there's the include-once.org/p/upgradephp polyfill to replace that function. But if your PHP version is that old, you have other problems to worry about. Don't try to reinvent a JSON parser yourself, try to fix the existing solutions if they're not working! –  deceze Nov 1 '12 at 9:33

4 Answers 4

up vote 2 down vote accepted
<?php

$string = '["image11.jpg","image54.png"]';
$arr=json_decode($string);
echo $arr[0];
?>
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It doesn't work on hosting server. And it works on my localhost (denwer). I don't know why... –  serg Nov 1 '12 at 9:27
    
in your server json_decode is enabled or not ? check php.ini.. –  vikram jain Nov 1 '12 at 9:29
    
1  
That would return an object, not an array. –  alex Nov 1 '12 at 9:53
1  
Please, contact to administrator..Because here is working ..You can test online on "codepad.org/"; –  vikram jain Nov 1 '12 at 9:56

use json_decode for make this string to array

$arr = json_decode($string,true)

thanks

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preg_match_all('@"(.*?)"@',$string,$arr);
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You can use the explode() function.

For example

$string = ' "image11.jpg","image54.png","dfgr.rar" ';
$arr = explode(',',$string);  //separating string using coma ',' character

In above example, the $arr table will consists of 3 values;

$arr[0] ="image11.jpg";
$arr[1] ="image54.png";
$arr[2] ="dfgr.rar";
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