259

What causes this error on the third line?

var products = [{
  "name": "Pizza",
  "price": "10",
  "quantity": "7"
}, {
  "name": "Cerveja",
  "price": "12",
  "quantity": "5"
}, {
  "name": "Hamburguer",
  "price": "10",
  "quantity": "2"
}, {
  "name": "Fraldas",
  "price": "6",
  "quantity": "2"
}];
console.log(products);
var b = JSON.parse(products); //unexpected token o

Open console to view error

2
  • 24
    You don't have any JSON? It's an array/object literal.
    – Bergi
    Jan 21, 2013 at 3:41
  • Sidenote: I noticed that if you use JQuery and get a JSON string by the data-attribute e.g. $('#mydata').data('person'); then JQuery turns the data string into a JSON object by itself. Here is no need to use JSON.parse().
    – Avatar
    Jun 8, 2023 at 11:05

24 Answers 24

267

products is an object. (creating from an object literal)

JSON.parse() is used to convert a string containing JSON notation into a Javascript object.

Your code turns the object into a string (by calling .toString()) in order to try to parse it as JSON text.
The default .toString() returns "[object Object]", which is not valid JSON; hence the error.

8
  • 1
    is it not an Array? Why is it an object. Objects start with { and arrays start with [? or am i false here
    – user2396641
    Sep 4, 2016 at 17:20
  • 5
    Arrays are objects; that's what .toString() returns (as per the spec).
    – SLaks
    Sep 4, 2016 at 18:01
  • 1
    Is the solution to stringify the object first? Feb 3, 2018 at 23:58
  • 13
    @MohammedNoureldin: No; the solution is to do nothing and use your object.
    – SLaks
    Feb 4, 2018 at 0:19
  • 4
    What if I get my data from a remote service using Ajax, which gives me Json response back? And I want that response to be saved in JavaScript array object? Feb 4, 2018 at 0:54
168

Let's say you know it's valid JSON, but you’re are still getting this...

In that case, it's likely that there are hidden/special characters in the string from whatever source your getting them. When you paste into a validator, they are lost - but in the string they are still there. Those characters, while invisible, will break JSON.parse().

If s is your raw JSON, then clean it up with:

// Preserve newlines, etc. - use valid JSON
s = s.replace(/\\n/g, "\\n")
               .replace(/\\'/g, "\\'")
               .replace(/\\"/g, '\\"')
               .replace(/\\&/g, "\\&")
               .replace(/\\r/g, "\\r")
               .replace(/\\t/g, "\\t")
               .replace(/\\b/g, "\\b")
               .replace(/\\f/g, "\\f");
// Remove non-printable and other non-valid JSON characters
s = s.replace(/[\u0000-\u001F]+/g,"");
var o = JSON.parse(s);

Updated a decade later - the control range is \u0000-\u001F - fixed...

The formal spec is here: https://www.json.org/json-en.html The reason we preserve the white space and other chars is that the spec allows it and it ensures your white space char is encoded correctly.

Should you accept invalid JSON? It's up to you. But sometimes we got work to do and want to move on.

6
  • 2
    Got a trailing special character after Base64 decoding, your method helped me a lot! Thx
    – Guillaume
    Jul 9, 2016 at 23:24
  • don't trust a source responding with invalid JSON. Just inform them that the data is corrupt. they should fix it. if you try to "recover" the response like this or in similar ways, you'll be keeping an unstable communication. Jul 14, 2016 at 18:34
  • 1
    Should be s = s.replace(/[\u0000-\u001F]+/g,""); instead of s = s.replace(/[\u0000-\u0019]+/g,""); , for replacing all the control characters. Right? Aug 17, 2016 at 10:00
  • what is the logic behind s.replace(/\\n/g, "\\n") I tested that, it applies to e.g. "abc\\ndef".replace(/\\n/g,"\\'"); it'd turn it into abc\'def why do you want to do that? Does json not allow ending a line with a backslash.. can you comment a bit about what your examples do and why
    – barlop
    Oct 28, 2016 at 16:44
  • Thanks, this really helps. Especially when you copy JSON to clipboard and there were hidden special endline characters in the console.
    – ChiHang
    Sep 25, 2017 at 3:44
82

It seems you want to stringify the object, not parse. So do this:

JSON.stringify(products);

The reason for the error is that JSON.parse() expects a String value and products is an Array.

Note: I think it attempts json.parse('[object Array]') which complains it didn't expect token o after [.

5
  • Worked for me. I stringified all array elements and array itself. Then json.parse() was successful.
    – cansu
    Aug 14, 2020 at 7:54
  • Why would you do this though? It's already an object. Why stringify it only to parse it back to an object again?
    – Clonkex
    Aug 20, 2021 at 7:17
  • @Clonkex to write it to a file, to post as text, to print on the document, to make a string search, to persist in a database, to debug, to make fun of it and a few other reasons... Aug 21, 2021 at 5:07
  • My point is that you wouldn't stringify and then immediately parse. That would be pointless (unless you're trying to do a deep copy or something weird like that). Maybe you're saying to replace parse with stringify, but it sounds like you're saying to first stringify so that the parse works (which, as I say, would be pointless).
    – Clonkex
    Aug 22, 2021 at 10:47
  • I don't know how you got "first stringify" from the answer but added "not parse" to be clear.. Aug 23, 2021 at 4:54
38

JSON.parse is waiting for a String in parameter. You need to stringify your JSON object to solve the problem.

products = [{"name":"Pizza","price":"10","quantity":"7"}, {"name":"Cerveja","price":"12","quantity":"5"}, {"name":"Hamburguer","price":"10","quantity":"2"}, {"name":"Fraldas","price":"6","quantity":"2"}];
console.log(products);
var b = JSON.parse(JSON.stringify(products));  //solves the problem
2
  • How is this different from previous answers? Aug 8, 2022 at 18:31
  • This is simple and straight forward and simply talks with code syntax. tnx Apr 4, 2023 at 14:40
33

I found the same issue with JSON.parse(inputString).

In my case, the input string is coming from my server page (return of a page method).

I printed the typeof(inputString) - it was string, but still the error occurs.

I also tried JSON.stringify(inputString), but it did not help.

Later I found this to be an issue with the new line operator [\n], inside a field value.

I did a replace (with some other character, put the new line back after parse) and everything was working fine.

5
  • 2
    The new line character was also my problem. So how can we restore such data?
    – kolenda
    Sep 20, 2013 at 22:35
  • @kolenda You have invalid JSON. You need to change your server to use an actual JSON serializer that returns valid JSON.
    – SLaks
    Oct 4, 2013 at 17:35
  • I had a similar issue but instead of "\n" I had a "\e" inside a path (I changed the server side code to use "/" instead of "\" and everything was working again)
    – Adam Tal
    Feb 12, 2014 at 13:43
  • use an escape wherein \n would be \\n Sep 23, 2014 at 20:30
  • I replaced it with <br> - worked for me - data = data.replaceAll('\n','\\u003cbr\\u003e')
    – srashtisj
    Jun 23, 2021 at 22:06
21

You should validate your JSON string here.

A valid JSON string must have double quotes around the keys:

JSON.parse({"u1":1000,"u2":1100})       // will be ok

If there are no quotes, it will cause an error:

JSON.parse({u1:1000,u2:1100})    
// error Uncaught SyntaxError: Unexpected token u in JSON at position 2

Using single quotes will also cause an error:

JSON.parse({'u1':1000,'u2':1100})    
// error Uncaught SyntaxError: Unexpected token ' in JSON at position 1
1
  • In my case, Grails 2.5.6 rendered render ([key: value]) with single quotes, leading to the JSON parseError at position 1 in jquery Ajax. render (groovy.json.JsonOutput.toJson ([key:value])) helped me out.
    – philburns
    Oct 21, 2019 at 10:10
14
products = [{"name":"Pizza","price":"10","quantity":"7"}, {"name":"Cerveja","price":"12","quantity":"5"}, {"name":"Hamburguer","price":"10","quantity":"2"}, {"name":"Fraldas","price":"6","quantity":"2"}];

change to

products = '[{"name":"Pizza","price":"10","quantity":"7"}, {"name":"Cerveja","price":"12","quantity":"5"}, {"name":"Hamburguer","price":"10","quantity":"2"}, {"name":"Fraldas","price":"6","quantity":"2"}]';
5
  • 2
    @SLaks yep,OP can use products directly. but if he want use JSON.parse, the args need be a string.
    – pktangyue
    Jan 21, 2013 at 3:39
  • what should i do in ASP Classic because ' is comment Jul 17, 2015 at 6:05
  • 1
    @ashishbhatt you can use ", then change all other " to \"
    – pktangyue
    Jul 17, 2015 at 7:07
  • 2
    Something like this JSON.parse(products.replace(/'/g, '"')) Jan 22, 2016 at 12:24
  • What is the gist of it? What is the conclusion? Please respond by editing (changing) your answer, not here in comments (without "Edit:", "Update:", or similar - the question/answer should appear as if it was written today). Aug 8, 2022 at 18:22
7

If there are leading or trailing spaces, it'll be invalid. Trailing and leading spaces can be removed as

mystring = mystring.replace(/^\s+|\s+$/g, "");

Source: JavaScript: trim leading or trailing spaces from a string

1
  • No. JSON.parse handles whitespace just fine.
    – Bergi
    Jan 9 at 11:50
3

Here's a function I made based on previous replies: it works on my machine but YMMV.

/**
   * @description Converts a string response to an array of objects.
   * @param {string} string - The string you want to convert.
   * @returns {array} - an array of objects.
  */
function stringToJson(input) {
  var result = [];

  // Replace leading and trailing [], if present
  input = input.replace(/^\[/, '');
  input = input.replace(/\]$/, '');

  // Change the delimiter to
  input = input.replace(/},{/g, '};;;{');

  // Preserve newlines, etc. - use valid JSON
  //https://stackoverflow.com/questions/14432165/uncaught-syntaxerror-unexpected-token-with-json-parse
  input = input.replace(/\\n/g, "\\n")
               .replace(/\\'/g, "\\'")
               .replace(/\\"/g, '\\"')
               .replace(/\\&/g, "\\&")
               .replace(/\\r/g, "\\r")
               .replace(/\\t/g, "\\t")
               .replace(/\\b/g, "\\b")
               .replace(/\\f/g, "\\f");

  // Remove non-printable and other non-valid JSON characters
  input = input.replace(/[\u0000-\u0019]+/g, "");

  input = input.split(';;;');

  input.forEach(function(element) {
    //console.log(JSON.stringify(element));

    result.push(JSON.parse(element));
  }, this);

  return result;
}
3

The only mistake is you are parsing an already-parsed object, so it's throwing an error. Use this and you will be good to go.

var products = [{
  "name": "Pizza",
  "price": "10",
  "quantity": "7"
}, {
  "name": "Cerveja",
  "price": "12",
  "quantity": "5"
}, {
  "name": "Hamburguer",
  "price": "10",
  "quantity": "2"
}, {
  "name": "Fraldas",
  "price": "6",
  "quantity": "2"
}];
console.log(products[0].name); // Name of item at 0th index

If you want to print the entire JSON content, use JSON.stringify().

2

One other gotcha that can result in "SyntaxError: Unexpected token" exception when calling JSON.parse() is using any of the following in the string values:

  1. New-line characters.

  2. Tabs (yes, tabs that you can produce with the Tab key!)

  3. Any stand-alone slash \ (but for some reason not /, at least not on Chrome.)

(For a full list see the String section here.)

For instance the following will get you this exception:

{
    "msg" : {
        "message": "It cannot
contain a new-line",
        "description": "Some discription with a     tabbed space is also bad",
        "value": "It cannot have 3\4 un-escaped"
    }
}

So it should be changed to:

{
    "msg" : {
        "message": "It cannot\ncontain a new-line",
        "description": "Some discription with a\t\ttabbed space",
        "value": "It cannot have 3\\4 un-escaped"
    }
}

Which, I should say, makes it quite unreadable in JSON-only format with larger amount of text.

1

My issue was that I had commented HTML in a PHP callback function via Ajax that was parsing the comments and return invalid JSON.

Once I removed the commented HTML, all was good and the JSON was parsed without any issues.

0

products is an array which can be used directly:

var i, j;

for(i=0; i<products.length; i++)
  for(j in products[i])
    console.log("property name: " + j, "value: " + products[i][j]);
0

When you are using the POST or PUT method, make sure to stringify the body part.

I have documented an example here at https://gist.github.com/manju16832003/4a92a2be693a8fda7ca84b58b8fa7154

1
0
[
  {
    "name": "Pizza",
    "price": "10",
    "quantity": "7"
  },
  {
    "name": "Cerveja",
    "price": "12",
    "quantity": "5"
  },
  {
    "name": "Hamburguer",
    "price": "10",
    "quantity": "2"
  },
  {
    "name": "Fraldas",
    "price": "6",
    "quantity": "2"
  }
]

Here is your perfect JSON content that you can parse.

0
0

Now apparently \r, \b, \t, \f, etc. aren't the only problematic characters that can give you this error.

Note that some browsers may have additional requirements for the input of JSON.parse.

Run this test code in your browser:

var arr = [];
for(var x=0; x < 0xffff; ++x){
    try{
        JSON.parse(String.fromCharCode(0x22, x, 0x22));
    }catch(e){
        arr.push(x);
    }
}
console.log(arr);

Testing on Chrome, I see that it doesn't allow JSON.parse(String.fromCharCode(0x22, x, 0x22)); where x is 34, 92, or from 0 to 31.

Characters 34 and 92 are the " and \ characters respectively, and they are usually expected and properly escaped. It's characterss 0 to 31 that would give you problems.

To help with debugging, before you do JSON.parse(input), first verify that the input doesn't contain problematic characters:

function VerifyInput(input){
    for(var x=0; x<input.length; ++x){
        let c = input.charCodeAt(x);
        if(c >= 0 && c <= 31){
            throw 'problematic character found at position ' + x;
        }
    }
}
0

The error you are getting, i.e., "unexpected token o", is because JSON is expected, but an object is obtained while parsing. That "o" is the first letter of word "object".

0

It can happen for a lot of reasons, but probably for an invalid character, so you can use JSON.stringify(obj); that will turn your object into a JSON, but remember that it is a jQuery expression.

1
  • Don't understand what jQuery has to do with your answer? JSON.stringify is a JS native API
    – Can Rau
    Mar 13, 2023 at 2:46
0

In my case there are the following character problems in my JSON string:

  1. \r
  2. \t
  3. \r\n
  4. \n
  5. :
  6. "

I have replaced them with other characters or symbols, and then reverted back again from coding.

0

This is now a JavaScript array of objects, not JSON format. To convert it into JSON format, you need to use a function called JSON.stringify().

JSON.stringify(products)
1
  • How is this different from previous answers? Aug 8, 2022 at 19:16
-1

Why do you need JSON.parse? It's already in an array-of-object format.

Better use JSON.stringify as below:

var b = JSON.stringify(products);

-1

Oh man, solutions in all previous answers didn't work for me. I had a similar problem just now. I managed to solve it with wrapping with the quote. See the screenshot. Whoo.

Enter image description here

Original:

var products = [{
  "name": "Pizza",
  "price": "10",
  "quantity": "7"
}, {
  "name": "Cerveja",
  "price": "12",
  "quantity": "5"
}, {
  "name": "Hamburguer",
  "price": "10",
  "quantity": "2"
}, {
  "name": "Fraldas",
  "price": "6",
  "quantity": "2"
}];
console.log(products);
var b = JSON.parse(products); //unexpected token o

2
  • 3
    You didnt solve it, you just made the whole thing a string Jan 10, 2021 at 11:03
  • Didn't think that time. Brain can't work. Thank you @NotSoShabby
    – Well Smith
    Oct 22, 2021 at 15:10
-1

The mistake I was doing was passing null (unknowingly) into JSON.parse().

So it threw Unexpected token n in JSON at position 0.

But this happens whenever you pass something which is not a JavaScript Object in JSON.parse().

-26

Use eval. It takes JavaScript expression/code as string and evaluates/executes it.

eval(inputString);
3
  • 1
    Each invocation of eval() creates a new instance of the JavaScript interpreter. This can be a resource hog.
    – Yëco
    Mar 16, 2015 at 18:05
  • This was the ONLY option that worked for me. Thanks
    – Rio Weber
    Nov 30, 2020 at 17:32
  • 1
    usage of eval is highly discouraged, especially if you retrieve your data through an api, since it will leave you vulnrable to security issues and malicious attacks
    – Blueprint
    Jul 28, 2021 at 12:33

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