31

Trying to figure out how to do the equivalent of something I did in javascript but in php. But I'm not sure of the operators to do it. In javascript I wanted to see if a particular parameter being passed was either an object or array.. and if not then was it a string/int and what I did was something like

if (str instanceof Array || str instanceof Object) 
{
   //code
}
else
{
   //code
}

anyone know of the equivalent to this for php?

6 Answers 6

77

Use is_array to check if a variable is an array, and similarly, use is_object to check if a variable is an object.

3
  • yea, its funny.. no sooner than I typed it out.. i remembered is_array then I looked up to see if theres similar for objects.. im super clever like that today apparently, thanks. By the way is there by chance anything like this for JSON cause I'd like to throw that in my mix so if it is JSON i can decode/encode accordingly to work with it
    – chris
    Jun 8, 2012 at 23:27
  • 3
    @chris: I suppose you can try to json_decode it, and if it fails, it's not JSON.
    – Ry-
    Jun 8, 2012 at 23:27
  • 1
    You should never optimize prematurely, but if is_array($var) turns out to be your bottleneck after profiling then (array) $var === $var is more performant
    – rgvcorley
    Apr 28, 2015 at 14:37
12

Try to use:

if (!is_scalar($var)) {
    // Varible is object or array
}
3
  • 1
    What about "resource" types?
    – OMA
    Oct 6, 2015 at 18:05
  • 2
    As mentioned @OMA this matches NULL and resources as well.
    – Yarik Dot
    Apr 26, 2016 at 11:04
  • PHP.net says: Note: is_scalar() does not consider resource type values to be scalar as resources are abstract datatypes which are currently based on integers. This implementation detail should not be relied upon, as it may change. Jul 29, 2019 at 0:21
1

object (use is_object)-----

stdClass Object
(
    [rest_food_items_id] => 137
    [rest_user_id] => 42
)

array (use is_array)----

Array
(
    [rest_food_items_id] => 137
    [rest_user_id] => 42
)

**

Example

**

if(is_object($data)){

}
if(is_array($data)){

}
1
  • it's right, for check array in object, and normal in array. Oct 26, 2017 at 6:59
1

I came across this question while looking for is_countable. Maybe it's of some use to somebody. https://www.php.net/manual/en/function.is-countable.php

1

As of PHP 8.0, you can use Union types when writing functions, validating your paramter's type at runtime:

function test(array|object $something): void
{
    // Here, $something is either an array or an object
}
1

pure is_array/is_object is unable to judge because: [0,1,2,3] is_array=true is_object=false ['a'=>1,'b'=>2] is_array=true is_object=false ...

here i wrote a simple function to do it

    function isRealObject(array $arrOrObject) {
        if (is_object($arrOrObject)) return true;
        $keys = array_keys($arrOrObject);
        return implode('', $keys) != implode(range(0, count($keys)-1));
    }
2

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