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I am confused about default values for PHP functions. Say I have a function like this:

function foo($blah, $x = "some value", $y = "some other value") {
    // code here!
}

What if I want to use the default argument for $x and set a different argument for $y?

I have been experimenting with different ways and I am just getting more confused. For example, I tried these two:

foo("blah", null, "test");
foo("blah", "", "test");

But both of those do not result in a proper default argument for $x. I have also tried to set it by variable name.

foo("blah", $x, $y = "test");   

I fully expected something like this to work. But it doesn't work as I expected at all. It seems like no matter what I do, I am going to have to end up typing in the default arguments anyway, every time I invoke the function. And I must be missing something obvious.

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4  
You're probably not missing anything, the PHP developers probably missed this. –  Matti Virkkunen Feb 6 '12 at 20:40
    
That's an interesting question. I've never actually had the need to do this as you've stated since I only use default args to expand functions inherited by other programmers when I am not sure what depends on the original. I'm curious about an answer. –  Kai Qing Feb 6 '12 at 20:40
1  
One of the best questions I've seen in a while! Have you tried passing nothing? foo("blah", , "test");? –  Second Rikudo Feb 6 '12 at 20:41
    
The rule is that default arguments can only follow arguments. That is you could have foo("blah") and x,y are default, or foo("Blah","xyz") and y is the default. –  Mouse Food Feb 6 '12 at 20:41
    
What is the behavior that you are getting? Your code seems right! –  ThinkingMonkey Feb 6 '12 at 20:44

5 Answers 5

up vote 23 down vote accepted

I would propose changing the function declaration as follows so you can do what you want:

function foo($blah, $x = null, $y = null) {
    if (null === $x) {
        $x = "some value";
    }

    if (null === $y) {
        $y = "some other value";
    }

    code here!

}

This way, you can make a call like foo('blah', null, 'non-default y value'); and have it work as you want, where the second parameter $x still gets its default value.

With this method, passing a null value means you want the default value for one parameter when you want to override the default value for a parameter that comes after it.

As stated in other answers,

default parameters only work as the last arguments to the function. If you want to declare the default values in the function definition, there is no way to omit one parameter and override one following it.

If I have a method that can accept varying numbers of parameters, and parameters of varying types, I often declare the function similar to the answer shown by Ryan P.

Here is another example (this doesn't answer your question, but is hopefully informative:

public function __construct($params = null)
{
    if ($params instanceof SOMETHING) {
        // single parameter, of object type SOMETHING
    } else if (is_string($params)) {
        // single argument given as string
    } else if (is_array($params)) {
        // params could be an array of properties like array('x' => 'x1', 'y' => 'y1')
    } else if (func_num_args() == 3) {
        $args = func_get_args();

        // 3 parameters passed
    } else if (func_num_args() == 5) {
        $args = func_get_args();
        // 5 parameters passed
    } else {
        throw new InvalidArgumentException("Could not figure out parameters!");
    }
}
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Optional arguments only work at the end of a function call. There is no way to specify a value for $y in your function without also specifying $x. Some languages support this via named parameters (VB/C# for example), but not PHP.

You can emulate this if you use an associative array for parameters instead of arguments -- i.e.

function foo(array $args = array()) {
    $x = !isset($args['x']) ? 'default x value' : $args['x'];
    $y = !isset($args['y']) ? 'default y value' : $args['y'];

    ...
}

Then call the function like so:

foo(array('y' => 'my value'));
share|improve this answer
    
Your condition should really be isset($args['x']), as it would currently replace an empty string, empty array, or false with the default value. –  Tim Cooper Feb 6 '12 at 20:44
    
@TimCooper lol I went to change based on your first comment that it should be '=== null', went and changed my answer to use isset instead, then came back to see you changed your comment too. :D –  Ryan P Feb 6 '12 at 20:47
    
Ah, drat! I don't like that at all... Oh well, you can't have everything. I suppose I will have to put a little more thought into the order of my default arguments then. Thanks! –  renosis Feb 6 '12 at 20:48
    
Throws error. Should be function foo($args = array()). –  wescrow Feb 6 '12 at 20:50

The only way I know of doing it is by omitting the parameter. The only way to omit the parameter is to rearrange the parameter list so that the one you want to omit is after the parameters that you HAVE to set. For example:

function foo($blah, $y = "some other value", $x = "some value")

Then you can call foo like:

foo("blah", "test");

This will result in:

$blah = "blah";
$y = "test";
$x = "some value";
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You can't do this directly, but a little code fiddling makes it possible to emulate.

function foo($blah, $x = false, $y = false) {
  if (!$x) $x = "some value";
  if (!$y) $y = "some other value";

  // code
}
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2  
That would work, but I find using null in this instance to be conceptually neater than false. –  TRiG Apr 16 '12 at 20:33

This is case, when object are better - because you can set up your object to hold x and y , set up defaults etc.

Approach with array is near to create object ( In fact, object is bunch of parameters and functions which will work over object, and function taking array will work over some bunch ov parameters )

Cerainly you can always do some tricks to set null or something like this as default

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