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Is it possible to use a numeric string like "123" as a key in a PHP array, without it being converted to an integer?

$blah = array('123' => 1);
var_dump($blah);

prints

array(1) {
  [123]=>
  int(1)
}

I want

array(1) {
  ["123"]=>
  int(1)
}
share|improve this question
7  
Since PHP is loosely typed, "123" == 123 for almost every purpose. What's the reason you want it specifically as a string (and having an int is bad)? – ircmaxell Nov 4 '10 at 19:31
6  
Reason that comes to my mind relates to array functions like array_merge "If the input arrays have the same string keys, then the later value for that key will overwrite the previous one. If, however, the arrays contain numeric keys, the later value will not overwrite the original value, but will be appended." – ficuscr Nov 5 '14 at 17:51
3  
Another example where numeric strings as array keys is problematic: asort – swenedo Jan 13 '15 at 22:02
    
Possible duplicate of How can I force PHP to use strings for array keys? – nawfal Nov 18 '15 at 8:53
2  
Another use case: unit testing JSON data transition. Converting such an array to JSON and back won't let you assert that both, the original and the result are exactly the same. – David Feb 3 at 14:39
up vote 49 down vote accepted

No; no it's not:

From the manual:

A key may be either an integer or a string. If a key is the standard representation of an integer, it will be interpreted as such (i.e. "8" will be interpreted as 8, while "08" will be interpreted as "08").

Addendum

Because of the comments below, I thought it would be fun to point out that the behaviour is similar but not identical to JavaScript object keys.

foo = { '10' : 'bar' };

foo['10']; // "bar"
foo[10]; // "bar"
foo[012]; // "bar"
foo['012']; // undefined!
share|improve this answer
14  
... shudders ... – jameshfisher Dec 15 '13 at 15:50
45  
PHP, the server-side IE. – Marek Maurizio Mar 23 '14 at 15:03
1  
It looks like there is a way, actually! Do you disagree with this answer? stackoverflow.com/a/35180513/247696 – Flimm Apr 19 at 11:48

If you need to use a numeric key in a php data structure, an object will work. And objects preserve order, so you can iterate.

$obj = new stdClass();
$key = '3';
$obj->$key = 'abc';
share|improve this answer
    
This is a very good suggestion. I am writing framework code and faced with someone passing an array that could have either "accidental" indexing: array('this', 'that') or "associative" indexing: array(123=>array('this', 'that')). Now, thanks to you, I can just typehint ;) +1 – Just Plain High Dec 8 '13 at 9:09
    
But is it possible to use a numeric string like "123" as a key in a PHP array, without it being converted to an integer? – Flimm Apr 19 at 11:45
    
@Flimm no that is not possible, which is why I offer my solution. – steampowered Apr 19 at 12:21
    
What about this solution: stackoverflow.com/a/35180513/247696 – Flimm Apr 19 at 12:23
    
@Flimm that answer seems to contradict the PHP manual: Strings containing valid integers will be cast to the integer type. E.g. the key "8" will actually be stored under 8. On the other hand "08" will not be cast, as it isn't a valid decimal integer., although I have not tested his answer. – steampowered Apr 19 at 13:04

You can typecast the key to a string but it will eventually be converted to an integer due to PHP's loose-typing. See for yourself:

$x=array((string)123=>'abc');
var_dump($x);
$x[123]='def';
var_dump($x);

From the PHP manual:

A key may be either an integer or a string . If a key is the standard representation of an integer , it will be interpreted as such (i.e. "8" will be interpreted as 8, while "08" will be interpreted as "08"). Floats in key are truncated to integer . The indexed and associative array types are the same type in PHP, which can both contain integer and string indices.

share|improve this answer
1  
The conversion is not due to loose typing; php determines whether the string looks numeric and then converts it. – Ja͢ck Apr 9 '13 at 7:10
    
So are you saying it's not possible? This answer shows that there is a way to use use a string that looks like an integer as a key in an array. – Flimm Apr 19 at 11:53
    
IMHO the problem is the PHP interpreter. It's not even possible to imagine to have a language that mixes strings and integers as array keys. The best solution? As proposed by Undolog stackoverflow.com/a/15413637/1977778 the best solution is to use a trailing space... Sadly. – sentenza May 19 at 14:22

Yes, it is possible by array-casting an stdClass object:

$data =  new stdClass;
$data->{"12"} = 37;
$data = (array) $data;
var_dump( $data );

That gives you:

array(1) {
  ["12"]=>
  int(37)
}

(Update: My original answer showed a more complicated way by using json_decode() and json_encode() which is not necessary.)

share|improve this answer

My workaround is:

$id = 55;
$array = array(
  " $id" => $value
);

The space char (prepend) is a good solution because keep the int conversion:

foreach( $array as $key => $value ) {
  echo $key;
}

You'll see 55 as int.

share|improve this answer
2  
Or "0$id" => $value. Prepending with 0 works too. – nawfal Nov 18 '15 at 10:00
    
@nawfal thanks man, i didn't expect to find the answer down here – Va1iant Feb 13 at 18:41
    
So you're saying that it is not possible to use a numeric string like "123" as a key in a PHP array, without it being converted to an integer? – Flimm Apr 19 at 11:46

I ran into this problem on an array with both '0' and '' as keys. It meant that I couldn't check my array keys with either == or ===.

$array=array(''=>'empty', '0'=>'zero', '1'=>'one');
echo "Test 1\n";
foreach ($array as $key=>$value) {
    if ($key == '') { // Error - wrongly finds '0' as well
        echo "$value\n";
    }
}
echo "Test 2\n";
foreach ($array as $key=>$value) {
    if ($key === '0') { // Error - doesn't find '0'
        echo "$value\n";
    }
}

The workaround is to cast the array keys back to strings before use.

echo "Test 3\n";
foreach ($array as $key=>$value) {
    if ((string)$key == '') { // Cast back to string - fixes problem
        echo "$value\n";
    }
}
echo "Test 4\n";
foreach ($array as $key=>$value) {
    if ((string)$key === '0') { // Cast back to string - fixes problem
        echo "$value\n";
    }
}
share|improve this answer
    
This is not really an answer to the question. – Flimm Apr 19 at 11:49

I had this problem trying to merge arrays which had both string and integer keys. It was important that the integers would also be handled as string since these were names for input fields (as in shoe sizes etc,..)

When I used $data = array_merge($data, $extra); PHP would 're-order' the keys. In an attempt doing the ordering, the integer keys (I tried with 6 - '6'- "6" even (string)"6" as keys) got renamed from 0 to n ... If you think about it, in most cases this would be the desired behaviour.

You can work around this by using $data = $data + $extra; instead. Pretty straight forward, but I didn't think of it at first ^^.

share|improve this answer
    
The exact same problem led me to this page, but I have to say that this is not answer to OP's question. – Flimm Apr 19 at 11:50
    
@Flimm True. But searching for an answer led me to this page. I figured my solution could be a help for other Googlers :) – Brainfeeder Apr 19 at 11:53

Strings containing valid integers will be cast to the integer type. E.g. the key "8" will actually be stored under 8. On the other hand "08" will not be cast, as it isn't a valid decimal integer.

WRONG

I have a casting function which handles sequential to associative array casting,

$array_assoc = cast($arr,'array_assoc');

$array_sequential = cast($arr,'array_sequential');

$obj = cast($arr,'object');

$json = cast($arr,'json');



function cast($var, $type){

    $orig_type = gettype($var);

    if($orig_type == 'string'){

        if($type == 'object'){
            $temp = json_decode($var);
        } else if($type == 'array'){
            $temp = json_decode($var, true);
        }
        if(isset($temp) && json_last_error() == JSON_ERROR_NONE){
            return $temp;
        }
    }
    if(@settype($var, $type)){
        return $var;
    }
    switch( $orig_type ) {

        case 'array' :

            if($type == 'array_assoc'){

                $obj = new stdClass;
                foreach($var as $key => $value){
                    $obj->{$key} = $value;
                }
                return (array) $obj;

            } else if($type == 'array_sequential'){

                return array_values($var);

            } else if($type == 'json'){

                return json_encode($var);
            }
        break;
    }
    return null; // or trigger_error
}
share|improve this answer

I had this problem while trying to sort an array where I needed the sort key to be a hex sha1. When a resulting sha1 value has no letters, PHP turns the key into an integer. But I needed to sort the array on the relative order of the strings. So I needed to find a way to force the key to be a string without changing the sorting order.

Looking at the ASCII chart (https://en.wikipedia.org/wiki/ASCII) the exclamation point sorts just about the same as space and certainly lower than all numbers and letters.

So I appended an exclamation point at the end of the key string.

for(...) {

    $database[$sha.'!'] = array($sha,$name,$age);
}

ksort($database);
$row = reset($database);
$topsha = $row[0];
share|improve this answer
    
So are you saying it's not possible to use a numeric string like "123" as a key in a PHP array, without it being converted to an integer? – Flimm Apr 19 at 11:52
    
No - it only treats the key that is all numbers as an integer when sorting the array using ksort() - it is never converted to an integer - just compared as one during sorting. – drchuck Apr 20 at 18:14

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