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I am studying a custom framework. I found a code like

<script type="text/javascript"> 
<?php
    echo "ABC.Variables.Objects = eval('(" . $Objects . ")');";
?>
</script>

and in see source i saw code like

ABC.Variables.Objects = eval('({"success":true,"results":11})');

what was the main purpose of using EVAL in this case? Is is working on client side of server side?

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1  
if eval() is the answer, you're almost certainly asking the wrong question –  ayush Oct 4 '12 at 11:14
1  
There is no purpose for using eval in this case. PHP code sloppily ported from Javascript that was using AJAX, maybe? But even then eval would not be the way to go. In general, eval should be avoided, as it is dangerous from both a stability and security standpoint. –  Mark Reed Oct 4 '12 at 11:25
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3 Answers 3

eval here is use to turn the json format string to a javascript object. The right way to do this is to use JSON.parse(str) or some json parse functions for old browsers.

But you don't need to use eval in such case, even JSON.parse() is not necessary.

You just need to do:

<script type="text/javascript">
  // of course $Objects needs to be a valid json string, eg the result of json_encode 
  ABC.Variables.Objects = <?php echo $Objects ?>;
</script>

And in the source you should see:

ABC.Variables.Objects = {"success":true,"results":11};

No eval is needed.

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That's not what the OP is asking. –  Second Rikudo Oct 4 '12 at 11:15
    
@MadaraUchiha So what it is supposed to be? My point is eval is not necessary, you even don't need JSON.parse in such case. –  xdazz Oct 4 '12 at 11:20
    
No, my bad, you're right. This is the proper way. –  Second Rikudo Oct 4 '12 at 11:23
    
@xdazz - Suppose i want to convert it into a javascript object then a string, then can i use it JSON.parse ???? –  Hacker Oct 4 '12 at 12:10
    
@hacker no, you do not need, just echo it directly. –  xdazz Oct 4 '12 at 13:12
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The PHP has output JavaScript code to be executed by the client browser. In the JavaScript (not the PHP), eval() is called to parse a JSON string which was originally stored in a PHP variable $Objects into a JavaScript object.

Rather than eval(), it really ought to be calling JSON.parse().

Would have been better:

echo "ABC.Variables.Objects = JSON.parse('" . $Objects . "');";
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If $Objects is already an json format string, there is no need to use JSON.parse(). If you could use var a = {"a":1}; why you need to do var a = JSON.parse('{"a":1}'); –  xdazz Oct 4 '12 at 11:17
    
@xdazz that is true. –  Michael Berkowski Oct 4 '12 at 11:17
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Here, the eval function converts a json string into json object.

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