I need a really, really fast method of checking if a string is JSON or not. I feel like this is not the best way:

function isJson($string) {
    return ((is_string($string) &&
            (is_object(json_decode($string)) ||
            is_array(json_decode($string))))) ? true : false;
}

Any performance enthusiasts out there want to improve this method?

  • 3
    Consider only using json_decode once... also, check the input and return values of json_decode. – user166390 May 18 '11 at 8:20
  • 4
    So, which one is the answer? – Farid Rn Dec 6 '12 at 19:11
  • 7
    The ternary switch here is redundant. Your statement already evaluates as a boolean. – Occam's Razor Apr 9 '15 at 17:46
  • Possible duplicate of How to determine whether a string is valid JSON? – A.L Jan 13 '16 at 21:23
  • Accept the answer of Lewis Donovan ...it is working fine – Poonam Bhatt Sep 4 at 13:24

24 Answers 24

function isJson($string) {
 json_decode($string);
 return (json_last_error() == JSON_ERROR_NONE);
}
  • 16
    Looks like everyone is loving this answer. Any explanation why? – Kirk Ouimet May 18 '11 at 17:39
  • 8
    I believe PHP 5.3 > is needed to use the json_last_error function – Chris Harrison Sep 9 '11 at 2:55
  • 87
    Checking first character of string for {, [ or first symbol of any other literal can potentially greatly speed this one up when many of incoming strings are expected to be non-JSON. – Oleg V. Volkov Sep 25 '12 at 17:03
  • 18
    $phone = '021234567'; var_dump(isJson($phone)); return true no! it should return false. – vee Jan 2 '14 at 17:12
  • 18
    Beware, this function will return true for any number also, whether you specify it as a string or a true number. 6.5 = true, '300' = true, 9 = true etc. So this might be a valid JSON value but the function might not behave as you expect, if you want to check only for valid JSON strings with {} or []; – BadHorsie Feb 25 '14 at 16:57

Answer to the Question

The function json_last_error returns the last error occurred during the JSON encoding and decoding. So the fastest way to check the valid JSON is

// decode the JSON data
// set second parameter boolean TRUE for associative array output.
$result = json_decode($json);

if (json_last_error() === JSON_ERROR_NONE) {
    // JSON is valid
}

// OR this is equivalent

if (json_last_error() === 0) {
    // JSON is valid
}

Note that json_last_error is supported in PHP >= 5.3.0 only.

Full program to check the exact ERROR

It is always good to know the exact error during the development time. Here is full program to check the exact error based on PHP docs.

function json_validate($string)
{
    // decode the JSON data
    $result = json_decode($string);

    // switch and check possible JSON errors
    switch (json_last_error()) {
        case JSON_ERROR_NONE:
            $error = ''; // JSON is valid // No error has occurred
            break;
        case JSON_ERROR_DEPTH:
            $error = 'The maximum stack depth has been exceeded.';
            break;
        case JSON_ERROR_STATE_MISMATCH:
            $error = 'Invalid or malformed JSON.';
            break;
        case JSON_ERROR_CTRL_CHAR:
            $error = 'Control character error, possibly incorrectly encoded.';
            break;
        case JSON_ERROR_SYNTAX:
            $error = 'Syntax error, malformed JSON.';
            break;
        // PHP >= 5.3.3
        case JSON_ERROR_UTF8:
            $error = 'Malformed UTF-8 characters, possibly incorrectly encoded.';
            break;
        // PHP >= 5.5.0
        case JSON_ERROR_RECURSION:
            $error = 'One or more recursive references in the value to be encoded.';
            break;
        // PHP >= 5.5.0
        case JSON_ERROR_INF_OR_NAN:
            $error = 'One or more NAN or INF values in the value to be encoded.';
            break;
        case JSON_ERROR_UNSUPPORTED_TYPE:
            $error = 'A value of a type that cannot be encoded was given.';
            break;
        default:
            $error = 'Unknown JSON error occured.';
            break;
    }

    if ($error !== '') {
        // throw the Exception or exit // or whatever :)
        exit($error);
    }

    // everything is OK
    return $result;
}

Testing with Valid JSON INPUT

$json = '[{"user_id":13,"username":"stack"},{"user_id":14,"username":"over"}]';
$output = json_validate($json);
print_r($output);

Valid OUTPUT

Array
(
    [0] => stdClass Object
        (
            [user_id] => 13
            [username] => stack
        )

    [1] => stdClass Object
        (
            [user_id] => 14
            [username] => over
        )
)

Testing with invalid JSON

$json = '{background-color:yellow;color:#000;padding:10px;width:650px;}';
$output = json_validate($json);
print_r($output);

Invalid OUTPUT

Syntax error, malformed JSON.

Extra note for (PHP >= 5.2 && PHP < 5.3.0)

Since json_last_error is not supported in PHP 5.2, you can check if the encoding or decoding returns boolean FALSE. Here is an example

// decode the JSON data
$result = json_decode($json);
if ($result === FALSE) {
    // JSON is invalid
}

Hope this is helpful. Happy Coding!

  • Little precision : if this json is valid but a previous decoded one is invalid, your code is going to work correctly, because : "Returns the last error (if any) occurred during the last JSON encoding/decoding." – Bruno Dec 20 '16 at 11:58
  • Thanks @Madan, the "json_decode" verification solved to me that I running PHP 7.0. – Francis Rodrigues Feb 25 '17 at 14:30
  • Surely json_decode could just return false for the literal false, so a check ((strlen($json) === 5) && ($json !== 'false')) should also be undertaken to avoid that edge? – MrMesees Jul 11 '17 at 8:18
  • @Bruno If the last decoding works without errors then json_last_error returns JSON_ERROR_NONE. – Andrea Feb 14 at 13:50

All you really need to do is this...

if (is_object(json_decode($MyJSONArray))) 
    { 
        ... do something ...
    }

This request does not require a separate function even. Just wrap is_object around json_decode and move on. Seems this solution has people putting way too much thought into it.

  • 20
    @ggutenberg is_array() is for json_decode($json, true); – Roman M. Koss Oct 24 '13 at 16:32
  • @RomanM.Kos Just to be clear, if the array is a simple array, then you need to use is_array in addition to is_object, else is_object will return false for simple arrays encoded as JSON. So @ggutenberg is right in this case. Passing the true argument to json_decode forces an object to be returned as an array. You could in theory always force the decode to an array and just check of is_array, that should work. – userabuser Feb 14 '14 at 10:24
  • @userabuser If i json_encode($array) for simple PHP array, and then do json_decode($str) i will receive object, but not array. json_decode($str, true) forces to convert into array. Why do complicated string in your code? Check for is_array(json_decode($str, true)) and some time later when you read it you will understand that decoded must be only an array. Much harder to guess is_object(json_decode($MyJSONArray)) "Oh, here i am checking for decoded is an array or not?" – Roman M. Koss Feb 14 '14 at 22:35
  • @RomanM.Kos No, that's not correct, codepad.viper-7.com/OFrtsq - as I said, you can always force json_decode to return an array to save you checking for object and array, but if you don't AND you json_decode what was a simple array to begin with, you will receive an array in return on decode, not an object. You must use JSON_FORCE_OBJECT if you want to always force an object on encode IF passing a simple array. – userabuser Feb 15 '14 at 5:07
  • 6
    Downvote for saying: This request does not require a separate function even. Strictly speaking, no solution requires a separate function. The point of a function is not to make multiple lines of code look like one line of code. The point of the function is to make the JSON-checking process standard everywhere in your application, so that different programmers (or the same programmer over time) don't use different checking procedures at different stages in the flow of the program. – cartbeforehorse Jul 9 '14 at 8:17

Using json_decode to "probe" it might not actually be the fastest way. If it's a deeply nested structure, then instantiating a lot of objects of arrays to just throw them away is a waste of memory and time.

So it might be faster to use preg_match and the RFC4627 regex to also ensure validity:

  // in JS:
  var my_JSON_object = !(/[^,:{}\[\]0-9.\-+Eaeflnr-u \n\r\t]/.test(
         text.replace(/"(\\.|[^"\\])*"/g, '')));

The same in PHP:

  return !preg_match('/[^,:{}\\[\\]0-9.\\-+Eaeflnr-u \\n\\r\\t]/',
       preg_replace('/"(\\.|[^"\\\\])*"/', '', $json_string));

Not enough of a performance enthusiast to bother with benchmarks here however.

  • 9
    Complete recursive regex to verify JSON here: stackoverflow.com/questions/2583472/regex-to-validate-json/… - But it turns out PHPs json_decode is always faster than a PCRE regex. (Though it's not very optimized, no synthetic tests found, and might behave differently in Perl..) – mario May 31 '11 at 22:44
  • 4
    error Unknown modifier 'g' – vee Jan 2 '14 at 17:14
  • 3
    @vee Yes, thanks for the note. But let's keep it here [incorrectly], so nobody actually uses that in production. – mario Jan 2 '14 at 21:12
  • 1
    @cartbeforehorse Okay, thanks. I fixed the escaping wholesome for PHPs double quoted string context then. – mario Jul 9 '14 at 0:30
  • 4
    @mario Okay, I see. So basically, the PHP escapes the backslashes before the reg-exp engine gets to see it. As far as the reg-exp engine is concerned, there are half the number of backslashes in the string as what we humans see. "Like reg-exp wasn't complicated enough already" – cartbeforehorse Jul 9 '14 at 8:26

This will return true if your string represents a json array or object:

function isJson($str) {
    $json = json_decode($str);
    return $json && $str != $json;
}

It rejects json strings that only contains a number, string or boolean, although those strings are technically valid json.

var_dump(isJson('{"a":5}')); // bool(true)
var_dump(isJson('[1,2,3]')); // bool(true)
var_dump(isJson('1')); // bool(false)
var_dump(isJson('1.5')); // bool(false)
var_dump(isJson('true')); // bool(false)
var_dump(isJson('false')); // bool(false)
var_dump(isJson('null')); // bool(false)
var_dump(isJson('hello')); // bool(false)
var_dump(isJson('')); // bool(false)

It is the shortest way I can come up with.

  • Rather than var_dump, you could put this in a PHPUnit test-case. Otherwise I'm both surprised and happy to learn it's true. – MrMesees Jul 11 '17 at 8:12
  • 2
    Why does everyone else have such long winded answers when this works great? Thanks. – toddmo May 13 at 17:19
function is_json($str){ 
    return json_decode($str) != null;
}

http://tr.php.net/manual/en/function.json-decode.php return value is null when invalid encoding detected.

  • 3
    It will also improperly return null for "null" (which isn't valid JSON, but may be entirely "valid" to json_decode otherwise). Go figure. – user166390 May 18 '11 at 8:22
  • I think this sould be: json_decode($str)!=null; or otherwise the function should be called is_not_json. – Yoshi May 18 '11 at 8:23
  • That function would be better renamed "is something other than JSON"! – lonesomeday May 18 '11 at 8:23
  • Right. Sorry for my mistake. – Ahmet Alp Balkan - Google May 18 '11 at 9:31
  • 2
    @user166390, json_decode('null') is valid JSON according to the spec, and should return the value of null. – zzzzBov May 8 '15 at 1:23

You must validate your input to make sure the string you pass is not empty and is, in fact, a string. An empty string is not valid JSON.

function is_json($string) {
  return !empty($string) && is_string($string) && is_array(json_decode($string, true)) && json_last_error() == 0;
}

I think in PHP it's more important to determine if the JSON object even has data, because to use the data you will need to call json_encode() or json_decode(). I suggest denying empty JSON objects so you aren't unnecessarily running encodes and decodes on empty data.

function has_json_data($string) {
  $array = json_decode($string, true);
  return !empty($string) && is_string($string) && is_array($array) && !empty($array) && json_last_error() == 0;
}
  • +1 for actually thinking about the problem in a real-world context. – cartbeforehorse Jul 9 '14 at 8:33
  • Just be wary that '0' (the string of zero)is empty by php logic... – Kzqai Nov 24 '14 at 20:06
  • But '0' is not valid json... why would I be wary? @Kzqai – upful Dec 5 '14 at 20:05

The simplest and fastest way that I use is following;

$json_array = json_decode( $raw_json , true );

if( $json_array == NULL )   //check if it was invalid json string
    die ('Invalid');  // Invalid JSON error

 // you can execute some else condition over here in case of valid JSON

It is because json_decode() returns NULL if the entered string is not json or invalid json.


Simple function to validate JSON

If you have to validate your JSON in multiple places, you can always use the following function.

function is_valid_json( $raw_json ){
    return ( json_decode( $raw_json , true ) == NULL ) ? false : true ; // Yes! thats it.
}

In the above function, you will get true in return if it is a valid JSON.

This will do it:

function isJson($string) {
    $decoded = json_decode($string);
    if ( !is_object($decoded) && !is_array($decoded) ) {
        return false;
    }
    return (json_last_error() == JSON_ERROR_NONE);
}

if ( isJson($someJsonString) ) {
    echo "valid JSON";
} else {
    echo "not valid JSON";
}

Easy method is to check the json result..

$result = @json_decode($json,true);
    if (is_array($result)) {
        echo 'JSON is valid';
    }else{
        echo 'JSON is not valid';
    }

Another simple way

function is_json($str)
{
    return is_array(json_decode($str,true));
}
  • 1
    This isn't correct. Any PHP type can be encoded into JSON such as objects, strings, etc and the json_decode function is expected to return them. This is only true if you are always decoding arrays and no other variable types. – Chaoix Aug 15 '14 at 19:38
  • @Chaoix using json_decode($str,true) makes it convert objects to arrays so it will pass the is_array check. You correct about strings, integers, etc. though. – Paul Phillips Mar 18 '15 at 10:05
  • I see the what you mean about the second parameter on json_encode. I still think @Ahad Ali's solution is a much better one in terms of typing and only doing a json_decode once in your algorithms. – Chaoix Mar 26 '15 at 17:08

Earlier i was just checking for a null value, which was wrong actually.

    $data = "ahad";
    $r_data = json_decode($data);
    if($r_data){//json_decode will return null, which is the behavior we expect
        //success
    }

The above piece of code works fine with strings. However as soon as i provide number, it breaks up.for example.

    $data = "1213145";
    $r_data = json_decode($data);

    if($r_data){//json_decode will return 1213145, which is the behavior we don't expect
        //success
    }

To fix it what i did was very simple.

    $data = "ahad";
    $r_data = json_decode($data);

    if(($r_data != $data) && $r_data)
        print "Json success";
    else
        print "Json error";
  • Nice solution. Handles the typing issue very well! – Chaoix Aug 15 '14 at 19:40

We need to check if passed string is not numeric because in this case json_decode raises no error.

function isJson($str) {
    $result = false;
    if (!preg_match("/^\d+$/", trim($str))) {
        json_decode($str);
        $result = (json_last_error() == JSON_ERROR_NONE);
    }

    return $result;
}

in GuzzleHttp:

/**
 * Wrapper for json_decode that throws when an error occurs.
 *
 * @param string $json    JSON data to parse
 * @param bool $assoc     When true, returned objects will be converted
 *                        into associative arrays.
 * @param int    $depth   User specified recursion depth.
 * @param int    $options Bitmask of JSON decode options.
 *
 * @return mixed
 * @throws \InvalidArgumentException if the JSON cannot be decoded.
 * @link http://www.php.net/manual/en/function.json-decode.php
 */
function json_decode($json, $assoc = false, $depth = 512, $options = 0)
{
    $data = \json_decode($json, $assoc, $depth, $options);
    if (JSON_ERROR_NONE !== json_last_error()) {
        throw new \InvalidArgumentException(
            'json_decode error: ' . json_last_error_msg());
    }

    return $data;
}

/**
 * Wrapper for JSON encoding that throws when an error occurs.
 *
 * @param mixed $value   The value being encoded
 * @param int    $options JSON encode option bitmask
 * @param int    $depth   Set the maximum depth. Must be greater than zero.
 *
 * @return string
 * @throws \InvalidArgumentException if the JSON cannot be encoded.
 * @link http://www.php.net/manual/en/function.json-encode.php
 */
function json_encode($value, $options = 0, $depth = 512)
{
    $json = \json_encode($value, $options, $depth);
    if (JSON_ERROR_NONE !== json_last_error()) {
        throw new \InvalidArgumentException(
            'json_encode error: ' . json_last_error_msg());
    }

    return $json;
}

I've tried some of those solution but nothing was working for me. I try this simple thing :

$isJson = json_decode($myJSON);

if ($isJson instanceof \stdClass || is_array($isJson)) {
   echo("it's JSON confirmed");
} else {
   echo("nope");
}

I think it's a fine solutiuon since JSON decode without the second parameter give an object.

EDIT : If you know what will be the input, you can adapt this code to your needs. In my case I know I have a Json wich begin by "{", so i don't need to check if it's an array.

  • Your JSON could potentially just be an array, in which case it would be an array rather than instead of stdClass $foo = "[1, 1, 2, 3]"; var_dump(json_decode($foo)); => array(4) { [0]=> int(1) [1]=> int(1) [2]=> int(2) [3]=> int(3) } – Misha Nasledov Feb 13 at 21:48
  • True, I edited, thanks to pointed that out – Greco Jonathan Feb 14 at 12:56

I don't know about performance or elegance of my solution, but it's what I'm using:

if (preg_match('/^[\[\{]\"/', $string)) {
    $aJson = json_decode($string, true);
    if (!is_null($aJson)) {
       ... do stuff here ...
    }
}

Since all my JSON encoded strings start with {" it suffices to test for this with a RegEx. I'm not at all fluent with RegEx, so there might be a better way to do this. Also: strpos() might be quicker.

Just trying to give in my tuppence worth.

P.S. Just updated the RegEx string to /^[\[\{]\"/ to also find JSON array strings. So it now looks for either [" or {" at the beginning of the string.

Expanding on this answer How about the following:

<?php

    $json = '[{"user_id":13,"username":"stack"},{"user_id":14,"username":"over"}]';
    //$json = '12';

    function isJson($string) {
        json_decode($string);
        if(json_last_error() == JSON_ERROR_NONE) {
            if(substr($string,0,1) == '[' && substr($string,-1) == ']') { return TRUE; }
            else if(substr($string,0,1) == '{' && substr($string,-1) == '}') { return TRUE; }
            else { return FALSE; }
        }
    }

    echo isJson($json);
?>
  • 1
    Shouldn't the substring check be made before executing the decode to save time if the error is found in that check? I would imagine that 4 substring checks would be faster than a json_decode, but if someone could back me up with this assumption I'd appreciate any thoughts on this. – Mark Aug 7 '15 at 15:04
  • That's a fare argument. I don't know the processing time involved, but if it's faster then yes. – Sevenearths Aug 17 '15 at 11:11
  • 1
    @Sevenearths thank you kind sir. – Haring10 Mar 8 '16 at 18:54

Should be something like this:

 function isJson($string)
 {
    // 1. Speed up the checking & prevent exception throw when non string is passed
    if (is_numeric($string) ||
        !is_string($string) ||
        !$string) {
        return false;
    }

    $cleaned_str = trim($string);
    if (!$cleaned_str || !in_array($cleaned_str[0], ['{', '['])) {
        return false;
    }

    // 2. Actual checking
    $str = json_decode($string);
    return (json_last_error() == JSON_ERROR_NONE) && $str && $str != $string;
}

UnitTest

public function testIsJson()
{
    $non_json_values = [
        "12",
        0,
        1,
        12,
        -1,
        '',
        null,
        0.1,
        '.',
        "''",
        true,
        false,
        [],
        '""',
        '[]',
        '   {',
        '   [',
    ];

   $json_values = [
        '{}',
        '{"foo": "bar"}',
        '[{}]',
        '  {}',
        ' {}  '
    ];

   foreach ($non_json_values as $non_json_value) {
        $is_json = isJson($non_json_value);
        $this->assertFalse($is_json);
    }

    foreach ($json_values as $json_value) {
        $is_json = isJson($json_value);
        $this->assertTrue($is_json);
    }
}

The custom function

function custom_json_decode(&$contents=NULL, $normalize_contents=true, $force_array=true){

    //---------------decode contents---------------------

    $decoded_contents=NULL;

    if(is_string($contents)){

        $decoded_contents=json_decode($contents,$force_array);

    }

    //---------------normalize contents---------------------

    if($normalize_contents===true){

        if(is_string($decoded_contents)){

            if($decoded_contents==='NULL'||$decoded_contents==='null'){

                $contents=NULL;
            }
            elseif($decoded_contents==='FALSE'||$decoded_contents==='false'){

                $contents=false;
            }
        }
        elseif(!is_null($decoded_contents)){

            $contents=$decoded_contents;
        }
    }
    else{

        //---------------validation contents---------------------

        $contents=$decoded_contents;
    }

    return $contents;
}

Cases

$none_json_str='hello';

//------------decoding a none json str---------------

$contents=custom_json_decode($none_json_str); // returns 'hello'

//------------checking a none json str---------------

custom_json_decode($none_json_str,false);

$valid_json=false;

if(!is_null($none_json_str)){

    $valid_json=true;

}

Resources

https://gist.github.com/rafasashi/93d06bae83cc1a1f440b

Freshly-made function for PHP 5.2 compatibility, if you need the decoded data on success:

function try_json_decode( $json, & $success = null ){
  // non-strings may cause warnings
  if( !is_string( $json )){
    $success = false;
    return $json;
  }

  $data = json_decode( $json );

  // output arg
  $success =

    // non-null data: success!
    $data !==  null  ||

    // null data from 'null' json: success!
    $json === 'null' ||

    // null data from '  null  ' json padded with whitespaces: success!
    preg_match('/^\s*null\s*$/', $json );

  // return decoded or original data
  return $success ? $data : $json;
}

Usage:

$json_or_not = ...;

$data = try_json_decode( $json_or_not, $success );

if( $success )
     process_data( $data );
else what_the_hell_is_it( $data );

Some tests:

var_dump( try_json_decode( array(), $success ), $success );
// ret = array(0){}, $success == bool(false)

var_dump( try_json_decode( 123, $success ), $success );
// ret = int(123), $success == bool(false)

var_dump( try_json_decode('      ', $success ), $success );
// ret = string(6) "      ", $success == bool(false)

var_dump( try_json_decode( null, $success ), $success );
// ret = NULL, $success == bool(false)

var_dump( try_json_decode('null', $success ), $success );
// ret = NULL, $success == bool(true)

var_dump( try_json_decode('  null  ', $success ), $success );
// ret = NULL, $success == bool(true)

var_dump( try_json_decode('  true  ', $success ), $success );
// ret = bool(true), $success == bool(true)

var_dump( try_json_decode('  "hello"  ', $success ), $success );
// ret = string(5) "hello", $success == bool(true)

var_dump( try_json_decode('  {"a":123}  ', $success ), $success );
// ret = object(stdClass)#2 (1) { ["a"]=> int(123) }, $success == bool(true)
function is_json($input) {

    $input = trim($input);

    if (substr($input,0,1)!='{' OR substr($input,-1,1)!='}')
        return false;

    return is_array(@json_decode($input, true));
}
  • How is @json_decode different from json_decode? – joels Aug 29 '15 at 21:08
  • 1
    @ use for debugging (hiding an error) but its absolutely not recommended – aswzen Sep 7 '15 at 9:53

A simple modification to henrik's answer to touch most required possibilities.

( including " {} and [] " )

function isValidJson($string) {
    json_decode($string);
    if(json_last_error() == JSON_ERROR_NONE) {

        if( $string[0] == "{" || $string[0] == "[" ) { 
            $first = $string [0];

            if( substr($string, -1) == "}" || substr($string, -1) == "]" ) {
                $last = substr($string, -1);

                if($first == "{" && $last == "}"){
                    return true;
                }

                if($first == "[" && $last == "]"){
                    return true;
                }

                return false;

            }
            return false;
        }

        return false;
    }

    return false;

}

The fastest way to maybe decode a possible JSON object to a PHP object/array:

/**
 * If $value is a JSON encoded object or array it will be decoded 
 * and returned.
 * If $value is not JSON format, then it will be returned unmodified.
 */
function get_data( $value ) {
    if ( ! is_string( $value ) ) { return $value; }
    if ( strlen( $value ) < 2 ) { return $value; }
    if ( '{' != $value[0] && '[' != $value[0] ) { return $value; }

    $json_data = json_decode( $value );
    if ( ! $json_data ) { return $value; }
    return $json_data;
}

Hi here's a little snippet from my library, in this first condition I'm just checking if the data is json then return it if correctly decoded, please note the substr usage for performance ( I haven't seen yet any json file not begining neither by { or [

$input=trim($input);
if ((substr($input, 0, 1) == '{' && substr($input, -1) == '}') or (substr($input, 0, 1) == '[' && substr($input, -1) == ']')) {
    $output = json_decode($input, 1);
    if (in_array(gettype($output),['object','array'])) {
        #then it's definitely JSON
    }
}
  • There have been 34 answers posted to this question, many of which also subscribe to the (mistaken) belief that JSON has to represent an array or an object. Is this answer doing anything different from the other 3 dozen answers? – miken32 Dec 5 at 15:57

protected by bummi Oct 13 '17 at 10:02

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