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I searched and read most of the related topics, but they weren't what I was looking for.

I've a JSON enocded string with json_encode PHP function:

{"casts":["Matthew Modine","Adam Baldwin","Vincent D'Onofrio"],"year":1987}

I'm working with jQuery to put the values in appropriate fields too, in the case of testing I did the below:

<script>
var obj = jQuery.parseJSON('<?=$data?>');
console.log(obj);
</script>

Suppose that $data is this:

$data =
<<<END
{"casts":["Matthew Modine","Adam Baldwin","Vincent D'Onofrio"],"year":1987}
END;

What Google chrome console produces in this case:

Uncaught SyntaxError: Unexpected identifier 

However when I make a change in JSON encoded string - adding Backslash to single quote :

{"casts":["Matthew Modine","Adam Baldwin","Vincent D\'Onofrio"],"year":1987}

Console output is as normal:

Object {casts: Array[3], year: 1987}
casts: Array[3]
year: 1987

The question: is this error in console expected? I think escaping or replacing ' with \' will be so dirty!

UPDATED

Actually $data value comes from a json_encode($var) and $var is an array!

$data = json_encode($var);
share|improve this question
up vote 10 down vote accepted

However when I make a change in JSON encoded string - adding Backslash to single quote

That escapes it in the PHP string literal. It is then inserted into the PHP string as a simple '.

If you want to escape it before inserting it into JavaScript then you need to add slashes to the string you get out of json_encode (or rather, since you aren't using that (you should be!) the JSON string you build by hand).

That is more work then you need though. The real solution is to remember that JSON is a subset of JavaScript literal syntax:

var obj = <?=$data?>;
share|improve this answer
    
json string is not built by hand. see update please. – revo Jul 29 '13 at 14:20
4  
+1 no need to parse it - the output of json_encode is already valid JavaScript. – cmbuckley Jul 29 '13 at 14:20
    
It would be good to specify JSON_HEX_TAG | JSON_HEX_AMP though. At least the former may be necessary to satisfy the restrictions for contents of script elements, and both are necessary if the document could be parsed as XML. – PleaseStand Jul 29 '13 at 14:26
    
@quentin you stated it much more clearly then I – Orangepill Jul 29 '13 at 14:26
1  
Hi there - a little late to the party but I had the exact same issue and this was the fix! Could you please exlain in more detail what <?=$data ?> means? Is that some short hand version of writing out '<?php echo $data; ?>` or is that something different? – user1775598 May 12 '14 at 14:08

For the broader problem of passing a JSON-encoded string in PHP (e.g., through cURL), using the JSON_HEX_APOS option is the cleanest way to solve this problem. This would solve your problem as well, although the previous answers are correct that you don't need to call parseJSON, and the JavaScript object is the same without calling parseJSON on $data.

For your code, you would just make this change:

json_encode($var) to json_encode($var, JSON_HEX_APOS).

Here's an example of the correctly encoded data being parsed by jQuery: http://jsfiddle.net/SuttX/

For further reading, here's an example from the PHP.net json_encode manual entry Example #2:

$a = array('<foo>',"'bar'",'"baz"','&blong&', "\xc3\xa9");

echo "Apos: ",    json_encode($a, JSON_HEX_APOS), "\n";

This will output:

Apos: ["<foo>","\u0027bar\u0027","\"baz\"","&blong&","\u00e9"]

A full list of JSON constants can be found here: PHP.net JSON constants

share|improve this answer
4  
Thanks you! This solution works very well for me! – Roberto Conte Rosito Dec 17 '14 at 16:05
3  
Awesome and simple solution! Saved my life 2 years later. Thanks!! – Fábio N Lima Oct 12 '15 at 23:49

The issue you are facing is that you are presenting the results of the json_encode call to javascript as a string whereas it is by valid javascript. Remove the jQuery.jsonParse set out of the output and simply assign the echoed results to the javascript variable in question.

var obj = <?= json_encode(array("casts"=>array("Matthew Modine","Adam Baldwin","Vincent D'Onofrio"),"year"=>1987)); ?>;
share|improve this answer
    
please see my update. – revo Jul 29 '13 at 14:20
    
The code above will work for you... it also shows by passing the javascript parseJson step. – Orangepill Jul 29 '13 at 14:22

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