168

I parse few data using a type class in my controller I'm getting data as follows:

{  
   "data":{  
      "userList":[  
         {  
            "id":1,
            "name":"soni"
         }
      ]
   },
   "status":200,
   "config":{  
      "method":"POST",
      "transformRequest":[  
         null
      ],
      "transformResponse":[  
         null
      ],
      "url":"/home/main/module/userlist",
      "headers":{  
         "rt":"ajax",
         "Tenant":"Id:null",
         "Access-Handler":"Authorization:null",
         "Accept":"application/json, text/plain, */*"
      }
   },
   "statusText":"OK"
}

I tried to store the data like this

var userData = _data;
var newData = JSON.parse(userData).data.userList;

How can I extract the user list to a new variable?

  • 15
    You may need not use JSON.parse. Try using userData directly as an object. – Mohit Bhardwaj Jul 14 '16 at 17:25
  • 15
    If console.log(typeof userData) shows object then you already have an javascript object and not a JSON string you need to parse. – t.niese Jul 14 '16 at 17:27
  • 1
    @MohitBhardwaj yes, need not required for the parse.. – Soniya Mohan Jul 14 '16 at 17:36
  • 6
    Usually whenever you get this error - Unexpected token o in JSON, most probably you are trying to parse an object which is already in parsed form. – Mohit Bhardwaj Jul 15 '16 at 6:48
  • @MohitBhardwaj okay! – Soniya Mohan Jul 15 '16 at 7:19
240

The JSON you posted looks fine, however in your code, it is most likely not a JSON string anymore, but already a JavaScript object. This means, no more parsing is necessary.

You can test this yourself, e.g. in Chrome's console:

new Object().toString()
// "[object Object]"

JSON.parse(new Object())
// Uncaught SyntaxError: Unexpected token o in JSON at position 1

JSON.parse("[object Object]")
// Uncaught SyntaxError: Unexpected token o in JSON at position 1

JSON.parse() converts the input into a string. The toString() method of JavaScript objects by default returns [object Object], resulting in the observed behavior.

Try the following instead:

var newData = userData.data.userList;
| improve this answer | |
  • 1
    So it this applicable for all kinds of browsers ? – comeOnGetIt Jun 12 '17 at 18:51
  • @Timo Could you look this link. – Martin Nov 15 '17 at 5:38
  • Sometimes this error can surface when the api url endpoint that serves the request has an error in its code or some other included or used file and it throws a error which is not handled or noted. Mostly you can get this if you look at the network tab in Browser developer tools or you can hit the endpoint using post man and see what comes up. – MuturiAlex May 23 at 16:54
  • Thank you for the explanation on the JSON String vs JS Obj distinction, easier to remember how to do it right when you know why it happened. – BrettJ Oct 26 at 4:49
73

the first parameters of function JSON.parse should be a String, and your data is a JavaScript object, so it will convert to a String [object object], you should use JSON.stringify before pass the data

JSON.parse(JSON.stringify(userData))
| improve this answer | |
  • this will not work when the string contains a double quote do you have any solution – Mr S Coder Jun 8 at 13:29
  • Maybe I'm missing something obvious, but why would you turn an object into JSON (which is what JSON.stringify() does), only to parse the JSON back into an object? Why not use the object directly? This seems completely superfluous. – Ivar Aug 25 at 13:44
28

Don't ever use JSON.parse without wrapping it in try-catch block:

// payload 
let userData = null;

try {
    // Parse a JSON
    userData = JSON.parse(payload); 
} catch (e) {
    // You can read e for more info
    // Let's assume the error is that we already have parsed the payload
    // So just return that
    userData = payload;
}

// Now userData is the parsed result
| improve this answer | |
  • 8
    This doesn't actually answer the question, but comments on lack of exception handling. – Richard Duerr Oct 26 '16 at 21:48
  • 3
    @RichardDuerr, but this will helps to fix error of head topic. i.e. SyntaxError: Unexpected token o in JSON at position 1 – Niko Jojo May 29 '19 at 7:02
  • 7
    That merely hides the error, but not actually solve it. – Richard Duerr May 29 '19 at 23:44
24

Just above JSON.parse, use:

var newData = JSON.stringify(userData)
| improve this answer | |
  • 5
    JSON.stringify() converts a JavaScript object to a string representation of it, which is the opposite of what JSON.parse() does. You were getting the SyntaxError because you were trying to parse something that was already an object. In @Sukhchain's solution, it gets converted to a string to avoid that. – Hubert Oct 3 '17 at 18:54
  • 1
    The downside of that is, in the end you're using JSON.parse() too much redundantly. Even though it's a pretty fast process, parsing JSON is done synchronously and can potentially block your UI, so I'd advise against using that. Instead, you could check if your variable is an object, for example using typeof(userData) === 'object' before attempting to parse it. – Hubert Oct 3 '17 at 18:54
2

Well, I meant that I need to parse object like this: var jsonObj = {"first name" : "fname"}. But, I don't actually. Because it's already an JSON.

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1

Unexpected 'O' error is thrown when JSON data or String happens to get parsed.

If it's string, it's already stringfied. Parsing ends up with Unexpected 'O' error.

I faced similar( although in different context), I solved the following error by removing JSON Producer.

    @POST
    @Produces({ **MediaType.APPLICATION_JSON**})
    public Response login(@QueryParam("agentID") String agentID , Officer aOffcr ) {
      return Response.status(200).entity("OK").build();

  }

The response contains "OK" string return. The annotation marked as @Produces({ **MediaType.APPLICATION_JSON})** tries to parse the string to JSON format which results in Unexpected 'O'.

Removing @Produces({ MediaType.APPLICATION_JSON}) works fine. Output : OK

Beware: Also, on client side, if you make ajax request and use JSON.parse("OK"), it throws Unexpected token 'O'

O is the first letter of the string

JSON.parse(object) compares with jQuery.parseJSON(object);

JSON.parse('{ "name":"Yergalem", "city":"Dover"}'); --- Works Fine

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1

We can also add checks like this:

function parseData(data) {
    if (!data) return {};
    if (typeof data === 'object') return data;
    if (typeof data === 'string') return JSON.parse(data);

    return {};
}
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0

Give a try catch like this, this will parse it if its stringified or else will take the default value

let example;
   try {
   example  = JSON.parse(data)
  } catch(e) {
    example = data
  }
| improve this answer | |

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