Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In Ruby

def my_func(foo,bar,*zim)
  [foo, bar, zim].collect(&:inspect)
end

puts my_func(1,2,3,4,5)

# 1
# 2
# [3, 4, 5]

In PHP (5.3)

function my_func($foo, $bar, ... ){
  #...
}

What's the best way to to do this in PHP?

share|improve this question
2  
have a look at func_get_args() –  Mark Baker Aug 25 '10 at 21:57

2 Answers 2

up vote 5 down vote accepted

Try

  • func_get_args — Returns an array comprising a function's argument list

PHP Version of your Ruby Snippet

function my_func($foo, $bar)
{
    $arguments = func_get_args();
    return array(
        array_shift($arguments),
        array_shift($arguments),
        $arguments
    );
}
print_r( my_func(1,2,3,4,5,6) );

or just

function my_func($foo, $bar)
{
    return array($foo , $bar , array_slice(func_get_args(), 2));
}

gives

Array
(
    [0] => 1
    [1] => 2
    [2] => Array
        (
            [0] => 3
            [1] => 4
            [2] => 5
            [3] => 6
        )
)

Note that func_get_args() will return all arguments passed to a function, not just those not in the signature. Also note that any arguments you define in the signature are considered required and PHP will raise a Warning if they are not present.

If you only want to get the remaining arguments and determine that at runtime, you could use the ReflectionFunction API to read the number of arguments in the signature and array_slice the full list of arguments to contain only the additional ones, e.g.

function my_func($foo, $bar)
{
    $rf = new ReflectionFunction(__FUNCTION__);
    $splat = array_slice(func_get_args(), $rf->getNumberOfParameters());
    return array($foo, $bar, $splat);
}

Why anyone would want that over just using func_get_args() is beyond me, but it would work. More straightforward is accessing the arguments in any of these ways:

echo $foo;
echo func_get_arg(0); // same as $foo
$arguments = func_get_args();
echo $arguments[0]; // same as $foo too

If you need to document variable function arguments, PHPDoc suggest to use

/**
 * @param Mixed $foo Required
 * @param Mixed $bar Required
 * @param Mixed, ... Optional Unlimited variable number of arguments
 * @return Array
 */

Hope that helps.

share|improve this answer
    
Gordon, the splat collects all the overloaded params into an array. I was afraid PHP was going to have to hurl on itself to get this type of functionality... –  maček Aug 25 '10 at 22:01
    
You don't even need $foo and $bar in the function definition, other than for "documentation" purposes - function my_func() would suffice - though if $foo and $bar are in the function definition they can be referenced as such in the function code. –  Mark Baker Aug 25 '10 at 22:03
    
@macek well, PHP does not have a facility to only collect the overloaded params, but func_get_args will contain any arguments passed to a function independent from it's signature. In the above function $foo and $bar makes these two required arguments. PHP will raise an error if you do not supply them. Inside the function it's $foo is func_get_arg(0) is func_get_args()[0] –  Gordon Aug 25 '10 at 22:07
    
@macek just split the resulting array into the variables you want using something like list($foo, $baz, $baz) = array(). us3.php.net/list Also, you're bound to get more useful answers when you don't hurl on someone's chosen platform. –  Alan Storm Aug 25 '10 at 22:32
    
@Alan, I wasn't intending to hurl on PHP; I use it all the time. PHP just isn't very suitable for meta programming. –  maček Aug 26 '10 at 4:51

Copying my answer from another question related to this:

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;
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.