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I want to increase $x by 1:

$x = 1;

function addOne($x) {
  $x++;
  return $x;
}

$x = addOne($x);

Is there a way to do this with references, so I don't need to return $x, I can just write addOne($x)?

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I think you want to build something more complex out of this right? Otherwise you could just do $x++; :D –  Christian Gärtner Jun 16 '13 at 10:37
    
It does sort of depend on what is being passed as an argument to the function since objects are (kind of) always passed by reference. –  kuujo Jun 16 '13 at 10:41
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2 Answers

up vote 3 down vote accepted

This is what you're looking for, a by-ref parameter indicated by &.

$x = 1;

function addOne(&$x) {
  $x++;
}

addOne($x);

Some notes:

  • By-ref parameters require that the value passed in not be a literal. Given my example above, addOne(5) would throw a fatal exception
  • References are not needed for objects (including stdClass objects), as all objects are passed by reference as of PHP 5.
  • References ARE needed for arrays, as arrays in PHP are not treated as objects
  • If you want a return value of a function passed by reference, you would indicate the reference on the function name (e.g. function &foo()).

More info on references: http://php.net/manual/en/language.references.php

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Was gonna mention giving some info on references in your answer but you beat me to it. –  kuujo Jun 16 '13 at 10:38
    
Is there a difference between using the reference in the function declaration, versus in the function call? Like function addOne($x) but then just call it with addOne(&$x)? –  Donny P Jun 16 '13 at 10:41
    
@DonnyP This is not C. Calling it that way will issue a warning. –  FloydThreepwood Jun 16 '13 at 10:45
3  
@FloydThreepwood depends on the version of PHP. In newer versions than PHP 5.3, calltime-pass-by-ref will cause a fatal error. –  bwoebi Jun 16 '13 at 10:46
    
@bwoebi Thanks, didn't know that! –  FloydThreepwood Jun 16 '13 at 11:02
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$x = 1;

function addOne(&$x) {
    $x++;
}

addOne($x);

The & sign shows that it takes the parameter by reference. So it increments $x in the function and it will also affect the $x variable in the calling scope.

See also: http://php.net/references for a quick overview about them.

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