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i have

 $age = implode(',', $wage);   // which is object return:  [1,4],[7,11],[15,11]
  $ww = json_encode($age);

and then i retrieve it here

    var age = JSON.parse(<?php echo json_encode($ww); ?>); 

so if i make

   alert(typeof(<?php echo $age; ?>))   // object
   alert(typeof(age))                   //string

in my case JSON.parse retuned as string.

how can i let json return as object?

EDIT:

 var age = JSON.parse(<?php echo $ww; ?>); // didnt work , its something syntax error
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$ww=json_encode($age) then you echo json_encode($ww); so really var age=JSON.parse(<?php echo json_encode(json_encode($age)); ?> Is this what you really want to be doing? –  Popnoodles Dec 8 '12 at 21:58
    
why are you using json_encode twice? In the second time you are basically running json_encode on a string, which doesn't make sense, since json_encode runs on arrays\objects and turns them into strings –  Matanya Dec 8 '12 at 22:02
    
i edited my post as u told me @Matanya –  echo_Me Dec 8 '12 at 22:09

3 Answers 3

up vote 1 down vote accepted
var age = [<?php echo $age; ?>];
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implode returns a string, so it is only natural that json_encode encodes it as such. It does not recognize already JSON-like data passed as a string.

If you want to get an object, you have to pass an associative array to json_encode:

$foo = array(
    1 => 4,
    7 => 11,
    15 => 11
);

echo json_encode($foo); // {1:4,7:11,15:11}

With so little info about what $wage looks like before it's imploded, it's hard to tell exactly what you want to get. How is that structure ([1,4],[7,11],[15,11]) an object? Is the first element of each tuple a key? That's what I assumed with my example, but it might be off.

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but why type of $age is object and type of age is string in my code –  echo_Me Dec 8 '12 at 22:01
    
@peter, you have to look at the code this generates. You first example does typeof([1,4],[7,11],[15,11]), and typeof on an array returns object (put simply, typeof returns the type of the last comma-separated value it receives as an argument). In your second case, you get typeof("[1,4],[7,11],[15,11]"), which definitely is a string literal (notice the quotes). –  zneak Dec 8 '12 at 22:04
    
i didnt make typeof("[1,4],[7,11],[15,11]") with double quotes –  echo_Me Dec 8 '12 at 22:07
    
@peter, you did not exactly do it, but you did var age = JSON.parse("\"[1,4],[7,11],[15,11]\""); and then typeof(age). (Look at how you call json_encode twice, once on $wage to get $age and then again on $age to put it in your Javascript.) –  zneak Dec 8 '12 at 22:08
    
so how to fix this then? to remove those double quotes .thx for the help –  echo_Me Dec 8 '12 at 22:11

a. You get a syntax error because you need to enclose the string within quotes, like so:

var age = JSON.parse("<?php echo $ww; ?>");

b. Moreover, you don't need JSON.parse. You can simply echo the php var after it was already json_encoded in the server side:

var age = <?php echo $ww; ?>;

JSON.parse is there to convert a JavaScript string to an object. In the case of PHP string, once it is built as JSON, echoing it in the right place is equivalent to coding it yourself.

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first i dont see where i have writed double quotes as u mentioned –  echo_Me Dec 8 '12 at 22:26
    
a. You didn't. You should have. b. As I said, this is redundant –  Matanya Dec 8 '12 at 22:27
    
b variable age is also string without json parse –  echo_Me Dec 8 '12 at 22:27
    
removed json parse but it same , its string for variable age –  echo_Me Dec 8 '12 at 22:33
    
go to view source in the browser please and paste it here so I can see how it is parsed –  Matanya Dec 8 '12 at 22:35

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