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ok i have this following code that parses JSON from an ajax response using $.parseJSON of jquery

try{
   var indata = $.parseJSON(rsp);
}catch(err){
   alert("an error occured");
}

Now as I want to cover any possible errors gracefully I tried to do some error handling which is usually try and catch now this code doesn't work. I intentionally do some malformed JSON and pass it to the $.parseJSON but it doesn't really work. Now my question is how I can handle this error gracefully

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That should work fine (I've tried it in Chrome). What actually happens? –  James Allardice Jun 7 '12 at 9:48
    
it doesn't really work. my firebug still catches the error. and if I turned off the firebug it skips the catch –  Mahan Jun 7 '12 at 9:50
    
@JamesAllardice in my case it doesn't really work.. of course its not really my real code but its the closest code in my part –  Mahan Jun 7 '12 at 9:50
    
Try being more specific than just "doesn't really work". "Doesn't really work" doesn't really mean anything. –  lanzz Jun 7 '12 at 9:56
    
ok it worked sorry... –  Mahan Jun 7 '12 at 11:20

3 Answers 3

up vote 5 down vote accepted

I would recommend handling errors in jquery ajax error callback. If you specify the dataType as json, you should end up in the error callback instead of success if the json string is not correctly formatted

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The code is fine it should be work, if not try 'jQuery' in place of '$'. e.g

try{
  var indata = jQuery.parseJSON(rsp);
}catch(err){
  alert("an error occured");
}
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From the jQuery API documentation:

Prior to jQuery 1.9, $.parseJSON returned null instead of throwing an error if it was passed an empty string, null, or undefined, even though those are not valid JSON.

Are you using a jQuery version older than 1.9?

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