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I have a string like,

{"Url":"http://localhost","DBName":"John_db","DBUser":"admin","Pass":"a"}

Now using this string i wanted URL, DBname, DBuser and pass in saperate variable like

$DBName =  'John_db';
$DBUser =  'admin';
$Url    =  'http://localhost';
$Pass   = 'a';

I am new to PHP, and can't find any solution to achieve this, can anybody help me in this?

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5 Answers 5

up vote 2 down vote accepted

You don't really need to split each one into individual variables. You could just decode that JSON into an array or object:

$str = '{"Url":"http://localhost","DBName":"John_db","DBUser":"admin","Pass":"a"}';
$arr = json_decode( $str, true );

Now you have an associative array containing all of the variables:

Array(
  [ Url ] => "http://localhost",
  [ DBName ] => "John_db",
  ...
)

If you don't specify the second parameter to json_decode(), you'll get a regular object:

$obj = json_decode( $str );
echo $obj->Url; // http://localhost
echo $obj->DBName; // John_db

References -

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I really appreciate your effort!, Now i have one issue, in the string the key has a white space, like {"DB Name":"John_db"}. that time I can't take a value from the $obj, do you have any solution for that? –  OpenCurious Oct 10 '13 at 10:10
1  
In that case you should make an associative array (my first example) by passing true to json_decode(). Then you'll be able to access that value by using: $arr[ "DB Name" ]. –  Lix Oct 10 '13 at 10:12
    
it's working!! Thank you again!! –  OpenCurious Oct 10 '13 at 10:15
1  
Glad to help! Happy coding! :) –  Lix Oct 10 '13 at 10:16

"This string" is JSON object. Use json_decode() to get array with all values and then get it from there.

$str = '{"Url":"http://localhost","DBName":"John_db","DBUser":"admin","Pass":"a"}';
$out = json_decode( $str, true );

and $out ends like:

Array
(
    [Url] => http://localhost
    [DBName] => John_db
    [DBUser] => admin
    [Pass] => a
)
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$ar = json_decode( '{"Url":"http://localhost","DBName":"John_db","DBUser":"admin","Pass":"a"}', 1 );
foreach ($ar as $k => $a) {
   $$k = $a;
}

Now you should have your vars filled.

Working code here: http://codepad.org/Do9ixqfN

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This is what the 'list()' function is for... –  Lix Oct 10 '13 at 10:05
    
With list you have to be sure that JSON has every elements in the right position. You can't be sure about this. –  Daniele Brugnara Oct 10 '13 at 10:08
    
True true true.. missed that! –  Lix Oct 10 '13 at 10:09
    
I suppose you could sort the array before using list(), but that's over complicating things... –  Lix Oct 10 '13 at 10:11
1  
You're right, but JSON can miss a param and we return to the start of the problem, again :P –  Daniele Brugnara Oct 10 '13 at 10:14

Use json_decode function like this:

<?
$string = '{"Url":"http://localhost","DBName":"John_db","DBUser":"admin","Pass":"a"}';
$array = json_decode( $string, true );

print_r($array);
?>

WORKING CODE

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That string is a JSON object and you can use json_decode to convert that string into an associative array.

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A little more explanation and perhaps some examples would really help to improve this answer. –  Lix Oct 10 '13 at 10:17
    
@Lix, by the time i posted and started to expand, many others answered as well. –  tuxnani Oct 10 '13 at 10:23

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