259

I've generated some JSON and I'm trying to pull it into an object in JavaScript. I keep getting errors. Here's what I have

var data = '{"count" : 1, "stack" : "sometext\n\n"}';
var dataObj = eval('('+data+')');

This gives me an error

unterminated string literal

With JSON.parse(data), I see similar error messages: "Unexpected token ↵" in Chrome, and "unterminated string literal" in Firefox and IE.

When I take out the \n after sometext the error goes away in both cases. I can't seem to figure out why the \n makes eval and JSON.parse fail.

  • 14
    Try using a real json parser instead of eval. – Eric Mar 4 '11 at 8:08
327

I guess this is what you want:

var data = '{"count" : 1, "stack" : "sometext\\n\\n"}';

(You need to escape the "\" in your string (turning it into a double-"\"), otherwise it will become a newline in the JSON source, not the JSON data.)

  • 90
    This is of course correct, but I'd like to add the reason for having to do this: the JSON spec at ietf.org/rfc/rfc4627.txt contains this sentence in section 2.5: "All Unicode characters may be placed within the quotation marks except for the characters that must be escaped: quotation mark, reverse solidus, and the control characters (U+0000 through U+001F)." Since a newline is a control character, it must be escaped. – daniel kullmann Apr 25 '13 at 10:48
  • 1
    According to www.json.org JSON does accept the control sequence "\n" in strings - and if you try JSON.parse(['"a\\na"'])[1].charCodeAt(); that will show 10 - which was "Linefeed" the last time I checked. --- BTW: Stop screaming! – BlaM Nov 11 '15 at 7:25
31

You will need to have a function which replaces \n to \\n in case data is not a string literal.

function jsonEscape(str)  {
    return str.replace(/\n/g, "\\\\n").replace(/\r/g, "\\\\r").replace(/\t/g, "\\\\t");
}

var data = '{"count" : 1, "stack" : "sometext\n\n"}';
var dataObj = JSON.parse(jsonEscape(data));

Resulting dataObj will be

Object {count: 1, stack: "sometext\n\n"}
  • 2
    you need to escape your escape characters (i.e. .replace("\\n", "\\\\n")) and I would also suggest using regex to allow replacing multiple instances (i.e. .replace(/\n/g, "\\\\n")) – musefan Mar 12 '12 at 9:14
  • 2
    why do you need to escape escape characters? I mean something like .replace("\n", "\\n") should do the job fine!! For example, var test = [{"description":"Some description about the product. This can be multi-line text."}]; console.log(JSON.parse(test.replace(/\n/g, "\\n"))); will output the object perfectly fine to browser console as [{"description":"Some description about the product.\nThis can be multi-line text."}] – Fr0zenFyr Nov 27 '15 at 11:43
  • BTW, in above comment, original JSON string has a new line, which is removed by stackoverflow's comment formatter.. You can see that the final output after replace should insert a new-line char \n in the value. – Fr0zenFyr Nov 27 '15 at 11:45
  • Because in the console, it should print \\n and not \n – manish_s Oct 18 '16 at 0:43
  • 1
    -1 This answer first constructs a string of invalid JSON (since newline is a control character), then tries to fix it with a series of incomplete replacements (there are more than 3 control characters). Then to top it off, it also manages to use the eval function. 17 upvotes??? – Phil Aug 24 '17 at 14:33
7

According to spec: http://www.ecma-international.org/publications/files/ECMA-ST/ECMA-404.pdf

A string is a sequence of Unicode code points wrapped with quotation marks
(U+0022). All characters may be placed within the quotation marks except for the
characters that must be escaped: quotation mark (U+0022), reverse solidus
(U+005C), and the control characters U+0000 to U+001F. There are two-character
escape sequence representations of some characters.

So you can't pass 0x0A or 0x0C codes directly. It is forbidden! Spec suggests to use escape sequences for some well defined codes from U+0000 to U+001F:

\f  represents the form feed character (U+000C). 
\n  represents the line feed character (U+000A).

As most of programming languages uses \ for quoting you should escape escape syntax (double-escape - once for language/platform, once for Json itself):

jsonStr = "{ \"name\": \"Multi\\nline.\" }";
3

You could just escape your string in the server when writing the value of the json field and unescape it when retrieving the value in the client browser, for instance.

The javascript implementation of all major browser have the unescape command.

Example: in the server:

response.write "{""field1"":""" & escape(RS_Temp("textField")) & """}"

in the browser:

document.getElementById("text1").value = unescape(jsonObject.field1)
2

You might want to look into this C# function to escape the string:

http://www.aspcode.net/C-encode-a-string-for-JSON-JavaScript.aspx

public static string Enquote(string s)  
{ 
    if (s == null || s.Length == 0)  
    { 
        return "\"\""; 
    } 
    char         c; 
    int          i; 
    int          len = s.Length; 
    StringBuilder sb = new StringBuilder(len + 4); 
    string       t; 

    sb.Append('"'); 
    for (i = 0; i < len; i += 1)  
    { 
        c = s[i]; 
        if ((c == '\\') || (c == '"') || (c == '>')) 
        { 
            sb.Append('\\'); 
            sb.Append(c); 
        } 
        else if (c == '\b') 
            sb.Append("\\b"); 
        else if (c == '\t') 
            sb.Append("\\t"); 
        else if (c == '\n') 
            sb.Append("\\n"); 
        else if (c == '\f') 
            sb.Append("\\f"); 
        else if (c == '\r') 
            sb.Append("\\r"); 
        else 
        { 
            if (c < ' ')  
            { 
                //t = "000" + Integer.toHexString(c); 
                string t = new string(c,1); 
                t = "000" + int.Parse(tmp,System.Globalization.NumberStyles.HexNumber); 
                sb.Append("\\u" + t.Substring(t.Length - 4)); 
            }  
            else  
            { 
                sb.Append(c); 
            } 
        } 
    } 
    sb.Append('"'); 
    return sb.ToString(); 
} 
  • 1
    You ought to clean that code up a bit… (Doesn't compile.) – Protector one Mar 29 '11 at 9:31
  • 2
    Why does this escape > ? – nothingisnecessary Jan 12 '15 at 23:18
2

Hi i used this function to strip newline or other chars in data to parse JSON data:

function normalize_str($str) {

    $invalid = array('Š'=>'S', 'š'=>'s', 'Đ'=>'Dj', 'đ'=>'dj', 'Ž'=>'Z', 'ž'=>'z',
    'Č'=>'C', 'č'=>'c', 'Ć'=>'C', 'ć'=>'c', 'À'=>'A', 'Á'=>'A', 'Â'=>'A', 'Ã'=>'A',
    'Ä'=>'A', 'Å'=>'A', 'Æ'=>'A', 'Ç'=>'C', 'È'=>'E', 'É'=>'E', 'Ê'=>'E', 'Ë'=>'E',
    'Ì'=>'I', 'Í'=>'I', 'Î'=>'I', 'Ï'=>'I', 'Ñ'=>'N', 'Ò'=>'O', 'Ó'=>'O', 'Ô'=>'O',
    'Õ'=>'O', 'Ö'=>'O', 'Ø'=>'O', 'Ù'=>'U', 'Ú'=>'U', 'Û'=>'U', 'Ü'=>'U', 'Ý'=>'Y',
    'Þ'=>'B', 'ß'=>'Ss', 'à'=>'a', 'á'=>'a', 'â'=>'a', 'ã'=>'a', 'ä'=>'a', 'å'=>'a',
    'æ'=>'a', 'ç'=>'c', 'è'=>'e', 'é'=>'e', 'ê'=>'e',  'ë'=>'e', 'ì'=>'i', 'í'=>'i',
    'î'=>'i', 'ï'=>'i', 'ð'=>'o', 'ñ'=>'n', 'ò'=>'o', 'ó'=>'o', 'ô'=>'o', 'õ'=>'o',
    'ö'=>'o', 'ø'=>'o', 'ù'=>'u', 'ú'=>'u', 'û'=>'u', 'ý'=>'y',  'ý'=>'y', 'þ'=>'b',
    'ÿ'=>'y', 'Ŕ'=>'R', 'ŕ'=>'r', "`" => "'", "´" => "'", '"' => ',', '`' => "'",
    '´' => "'", '"' => '\"', '"' => "\"", '´' => "'", "&acirc;€™" => "'", "{" => "",
    "~" => "", "–" => "-", "'" => "'","     " => " ");

    $str = str_replace(array_keys($invalid), array_values($invalid), $str);

    $remove = array("\n", "\r\n", "\r");
    $str = str_replace($remove, "\\n", trim($str));

      //$str = htmlentities($str,ENT_QUOTES);

    return htmlspecialchars($str);
}


echo normalize_str($lst['address']);
  • 7
    In most languages you have better ways to strip accents from unicode strings than writing down your own mapping function. See this question for an example in python: stackoverflow.com/questions/517923/… – MiniQuark Feb 1 '13 at 14:35
  • ya we have many ways to control the special chars in diff languages. – ShivarajRH Feb 6 '13 at 10:46
  • 1
    That's all kind of bad to strip them in general. Better encode them as XML numeric character reference and then decode on receiving end. – Annarfych Nov 29 '16 at 17:22
0

I encountered that problem while making a class in PHP4 to emulate json_encode (available in PHP5). Here's what i came up with :

class jsonResponse {
    var $response;

    function jsonResponse() {
        $this->response = array('isOK'=>'KO','msg'=>'Undefined');
    }

    function set($isOK, $msg) {
        $this->response['isOK'] = ($isOK) ? 'OK' : 'KO';
        $this->response['msg'] = htmlentities($msg);
    }

    function setData($data=null) {
        if(!is_null($data))
            $this->response['data'] = $data;
        elseif(isset($this->response['data']))
            unset($this->response['data']);
    }

    function send() {
        header('Content-type: application/json');
        echo '{"isOK":"'.$this->response['isOK'].'","msg":'.$this->parseString($this->response['msg']);
        if(isset($this->response['data']))
            echo ',"data":'.$this->parseData($this->response['data']);
        echo '}';
    }

    function parseData($data) {
        if(is_array($data)) {
            $parsed = array();
            foreach ($data as $key=>$value)
                array_push($parsed, $this->parseString($key).':'.$this->parseData($value));
            return '{'.implode(',', $parsed).'}';
        } else
            return $this->parseString($data);
    }

    function parseString($string) {
            $string = str_replace("\\", "\\\\", $string);
            $string = str_replace('/', "\\/", $string);
            $string = str_replace('"', "\\".'"', $string);
            $string = str_replace("\b", "\\b", $string);
            $string = str_replace("\t", "\\t", $string);
            $string = str_replace("\n", "\\n", $string);
            $string = str_replace("\f", "\\f", $string);
            $string = str_replace("\r", "\\r", $string);
            $string = str_replace("\u", "\\u", $string);
            return '"'.$string.'"';
    }
}

I followed the rules mentionned here. I only used what i needed but i figure that you can adapt it to your needs in the language your are using. The problem in my case wasn't about newlines as i originally thought but about the / not being escaped. I hope this prevent someone else from the little headache i had figuring out what i did wrong.

  • The 6 shorthands for control characters specified on json.org is not an exhaustive list of all control characters. As a result, this function could generate invalid JSON. – Phil Aug 24 '17 at 14:52
0

remove single quotes (tip: eval==evil)

var dataObj = {"count" : 1, "stack" : "sometext\n\n"};

console.log(dataObj);

protected by Machavity Jul 20 '16 at 18:16

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