119

I have a PHP function that takes a variable number of arguments (using func_num_args() and func_get_args()), but the number of arguments I want to pass the function depends on the length of an array. Is there a way to call a PHP function with a variable number of arguments?

1

10 Answers 10

134

If you have your arguments in an array, you might be interested by the call_user_func_array function.

If the number of arguments you want to pass depends on the length of an array, it probably means you can pack them into an array themselves -- and use that one for the second parameter of call_user_func_array.

Elements of that array you pass will then be received by your function as distinct parameters.


For instance, if you have this function :

function test() {
  var_dump(func_num_args());
  var_dump(func_get_args());
}

You can pack your parameters into an array, like this :

$params = array(
  10,
  'glop',
  'test',
);

And, then, call the function :

call_user_func_array('test', $params);

This code will the output :

int 3

array
  0 => int 10
  1 => string 'glop' (length=4)
  2 => string 'test' (length=4)

ie, 3 parameters ; exactly like iof the function was called this way :

test(10, 'glop', 'test');
3
  • 1
    Yes, thank you. call_user_func_array() is exactly the function I was looking for.
    – nohat
    Sep 14 '09 at 16:54
  • Is it possible to use call_user_func_array() with an object method call?
    – nohat
    Sep 14 '09 at 16:55
  • 6
    @nohat : you're welcome :-) ;; about using a method of an object : yes, you can, using something like array($obj, 'methodName') as first parameter ;; actually, you can pass any "callback" you want to that function. For more informations about callbacks, see php.net/callback#language.types.callback Sep 14 '09 at 16:57
62

This is now possible with PHP 5.6.x, using the ... operator (also known as splat operator in some languages):

Example:

function addDateIntervalsToDateTime( DateTime $dt, DateInterval ...$intervals )
{
    foreach ( $intervals as $interval ) {
        $dt->add( $interval );
    }
    return $dt;
}

addDateIntervaslToDateTime( new DateTime, new DateInterval( 'P1D' ), 
        new DateInterval( 'P4D' ), new DateInterval( 'P10D' ) );
1
  • 2
    The typed variable arguments list is a feature introduced in PHP 7. May 8 '18 at 13:16
50

In a new Php 5.6, you can use ... operator instead of using func_get_args().

So, using this, you can get all the parameters you pass:

function manyVars(...$params) {
   var_dump($params);
}
2
44

Since PHP 5.6, a variable argument list can be specified with the ... operator.

function do_something($first, ...$all_the_others)
{
    var_dump($first);
    var_dump($all_the_others);
}

do_something('this goes in first', 2, 3, 4, 5);

#> string(18) "this goes in first"
#>
#> array(4) {
#>   [0]=>
#>   int(2)
#>   [1]=>
#>   int(3)
#>   [2]=>
#>   int(4)
#>   [3]=>
#>   int(5)
#> }

As you can see, the ... operator collects the variable list of arguments in an array.

If you need to pass the variable arguments to another function, the ... can still help you.

function do_something($first, ...$all_the_others)
{
    do_something_else($first, ...$all_the_others);
    // Which is translated to:
    // do_something_else('this goes in first', 2, 3, 4, 5);
}

Since PHP 7, the variable list of arguments can be forced to be all of the same type too.

function do_something($first, int ...$all_the_others) { /**/ }
0
11

For those looking for a way to do this with $object->method:

call_user_func_array(array($object, 'method_name'), $array);

I was successful with this in a construct function that calls a variable method_name with variable parameters.

2
  • 2
    You can also use $object->method_name(...$array); May 18 '18 at 22:30
  • Going further, if you want to pass by reference, use $object->method_name(&...$args); Sep 11 '19 at 5:10
4

You can just call it.

function test(){        
     print_r(func_get_args());
}

test("blah");
test("blah","blah");

Output:

Array ( [0] => blah ) Array ( [0] => blah [1] => blah )

4
  • If I understand the OP correctly, the problem is not receiving the parameters, but calling the function with a variable number of parameters. Sep 14 '09 at 16:46
  • 1
    I didn't understanding the OP correctly, then. An array would definitely be the way to go, then. Then again, he could just pass the array directly into test(), no?
    – Donnie C
    Sep 14 '09 at 16:49
  • 1
    Passing an array might be a solution too, indeed -- If I understood correctly ^^ Sep 14 '09 at 16:50
  • 1
    Old question but fyi, an array works fine but passing actual arguments allows you to use PHP's default values for null arguments which saves a lot of ugly checking to see if the array contains particular values.
    – Endophage
    Mar 4 '11 at 0:39
2

I'm surprised nobody here has mentioned simply passing and extracting an array. E.g:

function add($arr){
    extract($arr, EXTR_REFS);
    return $one+$two;
}
$one = 1;
$two = 2;
echo add(compact('one', 'two')); // 3

Of course, this does not provide argument validation. For that, anyone can use my expect function: https://gist.github.com/iautomation/8063fc78e9508ed427d5

0

Here is a solution using the magic method __invoke

(Available since php 5.3)

class Foo {
    public function __invoke($method=null, $args=[]){
        if($method){
            return call_user_func_array([$this, $method], $args);
        }
        return false;
    }

    public function methodName($arg1, $arg2, $arg3){

    }
}

From inside same class:

$this('methodName', ['arg1', 'arg2', 'arg3']);

From an instance of an object:

$obj = new Foo;
$obj('methodName', ['arg1', 'arg2', 'arg3'])
1
  • This is basically using call_user_func_array as stated by top voted answer in 2009. Maybe there is a point to wrapping an extra __invoke around it - but I don't see it.
    – a20
    Apr 7 '18 at 13:58
0

An old question, I know, however, none of the answers here really do a good job of simply answer the question.

I just played around with php and the solution looks like this:

function myFunction($requiredArgument, $optionalArgument = "default"){
   echo $requiredArgument . $optionalArgument;
}

This function can do two things:

If its called with only the required parameter: myFunction("Hi") It will print "Hi default"

But if it is called with the optional parameter: myFunction("Hi","me") It will print "Hi me";

I hope this helps anyone who is looking for this down the road.

1
  • 3
    You failed to understand the question. OP was asking about arguments that he didn't have to explicitly define in the function signature - yet he can still pass values as arguments to the function. For example, the function signature doesn't have any arguments defined (optional or not), but when he requires it, OP can send 45 different values as arguments to the function.
    – a20
    Apr 7 '18 at 14:02
0

I wondered, I couldn't find documentation about the possiblity of using named arguments (since PHP 8) in combination with variable arguments. Because I tried this piece of code and I was surprised, that it actually worked:

function myFunc(...$args) {
    foreach ($args as $key => $arg) {
        echo "Key: $key Arg: $arg <br>";
    }
}
echo myFunc(arg1:"foo", arg2:"bar");

Output:

Key: arg1 Arg: foo
Key: arg2 Arg: bar

In my opinion, this is pretty cool.

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