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I am having one problem with the PHP json_encode function. It encodes numbers as strings, e.g.

array('id' => 3)

becomes

"{ ["id": "3", ...)

When js encounters these values, it interprets them as strings and numeric operations fail on them. Does anyone know some way to prevent json_encode from encoding numbers as strings? Thank you!

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14 Answers 14

up vote 14 down vote accepted

I've done a very quick test :

$a = array(
    'id' => 152,
    'another' => 'test',
    'ananother' => 456,
);
$json = json_encode($a);
echo $json;

This seems to be like what you describe, if I'm not mistaken ?

And I'm getting as output :

{"id":152,"another":"test","ananother":456}

So, in this case, the integers have not been converted to string.


Still, this might be dependant of the version of PHP we are using : there have been a couple of json_encode related bugs corrected, depending on the version of PHP...

This test has been made with PHP 5.2.6 ; I'm getting the same thing with PHP 5.2.9 and 5.3.0 ; I don't have another 5.2.x version to test with, though :-(

Which version of PHP are you using ? Or is your test-case more complex than the example you posted ?

Maybe one bug report on http://bugs.php.net/ could be related ? For instance, Bug #40503 : json_encode integer conversion is inconsistent with PHP ?


Maybe Bug #38680 could interest you too, btw ?

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Thanks Martin. I'm using 5.2.9. I wonder if the numeric data's getting read from the db as string? I'm sure the field types are int, but I can't think of another explanation. I'll try your quick test on my system and see if I get the same result. –  Chris Barnhill Sep 7 '09 at 22:07
    
I got the same result as you. I wonder why PHP –  Chris Barnhill Sep 7 '09 at 22:14
4  
OK about 5.2.9 ; if your data is coming from a database, the problem might be there : I've often seen data come from database with everything casted to string (I've seen this with PDO and mssql ; but, if I remember correctly, this also happens for MySQL in PHP < 5.3, when the new mysqlnd driver was not yet existing) ;; to check what your data look like, you can use var_dump, which outputs the types of each part of the data. –  Pascal MARTIN Sep 7 '09 at 22:14
    
(continued) thinks the data type for numeric values is string? Any ideas? –  Chris Barnhill Sep 7 '09 at 22:15
1  
I don't exactly know the technical reason of "why the data is returned from MySQL as a string" ;; probably something that has to do with the driver between PHP and MySQL ;; that is something that is (at least in some case) correcte by the new mysqlnd driver that comes with PHP 5.3 (see blog.ulf-wendel.de/?p=184 ; search for "integer" in the page to find the interesting sentence) ;; but I agree that this is not nice ^^ –  Pascal MARTIN Sep 7 '09 at 22:26

Note that from PHP 5.3.3 on, there's a flag for auto-converting numbers, while options parameter was added since PHP 5.3.0:

$arr = array( 'row_id' => '1', 'name' => 'George' );
echo json_encode( $arr, JSON_NUMERIC_CHECK ); // {"row_id":1,"name":"George"}
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3  
Note that JSON_NUMERIC_CHECK requires PHP 5.3.3. –  Robert Jan 13 '12 at 14:51
    
Helped me, thanks. –  Dennis Martinez May 7 '12 at 19:41
3  
Worked perfect until it cast a numeric label to an integer, blowing up .toLowerCase() in IE. Be careful, this solution is simple but overzealous. –  Brad Koch Jun 11 '12 at 21:57
3  
YOU ARE MY HERO love it. –  Petrogad Sep 7 '12 at 20:48
    
@BradKoch Change the line to .toString().toLowerCase() that will work with either numbers or strings. –  chaiguy Oct 1 '12 at 20:31

I, likewise was reading from a DB (PostgreSQL) and everything was a string. We loop over each row and do things with it to build up our final results array, so I used

$result_arr[] = array($db_row['name'], (int)$db_row['count']);

within the loop to force it to be an integer value. When I do json_encode($result_arr) now, it correctly formats it as a number. This allows you to control what is and is not a number coming from your database.

EDIT:

The json_encode() function also has the ability to do this on the fly using the JSON_NUMERIC_CHECK flag as a second argument to it. You need to be careful using it though as shown in this users example in the documentation (copied below): http://uk3.php.net/manual/en/function.json-encode.php#106641

<?php
// International phone number
json_encode(array('phone_number' => '+33123456789'), JSON_NUMERIC_CHECK);
?>

And then you get this JSON:

{"phone_number":33123456789}
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good answer. Helped me out –  Greg Burris Aug 10 '12 at 18:48

I'm encountering the same problem (PHP-5.2.11/Windows). I'm using this workaround

$json = preg_replace( "/\"(\d+)\"/", '$1', $json );

which replaces all (non-negative, integer) numbers enclosed in quotes with the number itself ('"42"' becomes '42').

See also this comment in PHP manual.

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Thanks for the code, but sadly it didn't work on my json because I have a number as an object name, and it seems to render the json invalid :( –  SSH This Apr 23 '13 at 0:25
    
@SSHThis, maybe you should use this syntax to convert the array into a JSON encoded array and not an object. $json_array = json_encode($some_array, false); So the false argument tells PHP to not do the object conversion. –  hyde Jun 22 '13 at 22:33
    
It's not safe at all to use that workaround. You'll get invalid json with structures like that: json_encode(array(-1=>'que', '0'=>'-1')) –  Alex Yaroshevich Oct 27 '13 at 23:39

try $arr = array('var1' => 100, 'var2' => 200);
$json = json_encode( $arr, JSON_NUMERIC_CHECK);

But it just work on PHP 5.3.3. Look at this PHP json_encode change log http://php.net/manual/en/function.json-encode.php#refsect1-function.json-encode-changelog

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This worked for me. Default install of PHP+apache on debian squeeze 6.0.5 with data coming from postgre db –  Nikolay Spassov Nov 23 '13 at 18:22

The following test confirms that changing the type to string causes json_encode() to return a numeric as a JSON string (i.e., surrounded by double quotes). Use settype(arr["var"], "integer") or settype($arr["var"], "float") to fix it.

<?php

class testclass {
    public $foo = 1;
    public $bar = 2;
    public $baz = "Hello, world";
}

$testarr = array( 'foo' => 1, 'bar' => 2, 'baz' => 'Hello, world');

$json_obj_txt = json_encode(new testclass());
$json_arr_txt = json_encode($testarr);

echo "<p>Object encoding:</p><pre>" . $json_obj_txt . "</pre>";
echo "<p>Array encoding:</p><pre>" . $json_arr_txt . "</pre>";

// Both above return ints as ints. Type the int to a string, though, and...
settype($testarr["foo"], "string");
$json_arr_cast_txt = json_encode($testarr);
echo "<p>Array encoding w/ cast:</p><pre>" . $json_arr_cast_txt . "</pre>";

?>
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Well, PHP json_encode() returns a string.

You can use parseFloat() or parseInt() in the js code though:

parseFloat('122.5'); // returns 122.5
parseInt('22'); // returns 22
parseInt('22.5'); // returns 22
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Thanks. I was hoping there was a more elegant method. –  Chris Barnhill Sep 7 '09 at 21:35
1  
yeah, the safest way is to parse over them. but again, isn't Javascript loosely typed? –  mauris Sep 8 '09 at 0:16
    
Just a comment: It is loosely typed, still the outcome of "1"+1 will be... 11 - so using JS you should be more attentious than in strong type languages, because they will warn you, JS just does what it's think is best best if handling String-Numbers... –  SamiSalami Sep 2 '12 at 19:59

For sake of completeness (as I can't add comments yet), let me also add this detail as another answer:

(Edit: To be read after realizing that the source data (i.e. in the OP's case, database result set) could be the problem (by returning numeric columns as strings), and json_encode() in fact was not the source of the problem)

Manual pages of both "mysql_fetch_array":

Returns an array of strings that corresponds to the fetched row,

... and "mysql_ fetch_ row":

Returns an numerical array of strings that corresponds to the fetched row

clearly states that; the entries in the returned array will be strings.

(I was using the DB class in phpBB2 (yes I know, it's obsolete!), and "sql_fetchrow()" method of that class uses "mysql_fetch_array()")

Not realizing that, I also ended up finding this question, and understanding the problem! :)

As Pascal Martin stated above in his follow-up comments, I believe a solution that takes care of the "incorrect type" problem at the source (i.e. by using the "mysql_field_type()" function and doing the casting right after fetch, (or other fetch methods like "object"?)) would be the better in general.

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Just run into the same problem and was the database returning the values as strings.

I use this as a workaround:

$a = array(
    'id' => $row['id'] * 1,
    'another' => ...,
    'ananother' => ...,
);
$json = json_encode($a);

That is multiplying the value by 1 to cast it into a number

Hope that helps someone

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I also had the same problem processing data from the database. Basically the problem is that the type in the array to convert in json, is recognized by PHP as a string and not as integer. In my case I made a query that returns data from a DB column counting row. The PDO driver does not recognize the column as int, but as strings. I solved by performing a cast as int in the affected column.

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It turns out that this is a version-specific problem. Sometimes a pull from a MySql database will maintain the correct types. In older versions, it may return everything as a string.

I wrote about it this morning. http://shakyshane.com/blog/output-json-from-php.html

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If you are using Zend_Json::encode and having a similar problem, Zend_Db is the likely culprit.

Have a look at this question: fetching an Integer from DB using Zend Framework returns the value as a string

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$rows = array();
while($r = mysql_fetch_assoc($result)) {
    $r["id"] = intval($r["id"]); 
    $rows[] = $r;
}
print json_encode($rows);  
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json_encode serializes some data structure in JSON format to be send across the network. Therefore all content will be of the type string. Just like when you receive some parameter from $_POST or $_GET.

If you have to make numeric operations on the values sent, just convert them to int first (with the intval() function in PHP or parseInt() in Javascript) and then execute the operations.

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that's not what he's talking about. he's talking about the json having double quotes around the numbers. –  JasonWoof Sep 8 '09 at 0:10
    
In the case of JSON, it does conserve Types. Imagine writing out a literal JavaScript Object, any quoted values become strings, but non-quoted numbers become integers, 0x[0-9a-z] becomes hex etc. There are type differences with PHP, such as, there is no such thing as an associative array, just Objects or indexed arrays etc. –  bucabay Sep 8 '09 at 0:25
    
right. The problem he was having, was that he had a php variable, that he thought had type int, because it came from a DB column of type int. But in fact the PHP variable had type string, thus the quotes in the JSON. –  JasonWoof Sep 8 '09 at 3:10

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