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I saw some function declarations like this:

function boo(&$var){
 ...
}

what does the & character do?

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6 Answers

up vote 16 down vote accepted

It's a pass by reference. The variable inside the function "points" to the same data as the variable from the calling context.

function foo(&$bar)
{
  $bar = 1;
}

$x = 0;
foo($x);
echo $x; // 1
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1  
I've got to start using foo and bar in my examples.. –  cambraca Nov 26 '10 at 1:15
    
so it behaves similar to when using global $var –  Alex Nov 26 '10 at 1:18
1  
@Alex, kind of true, but there's two big differences: 1) it works for non-global scopes (functions calling other functions) and 2) it doesn't depend on the inner function knowing the name of the variable. References as function arguments are easier to debug and less error prone than global variables, although some of the same concerns (e.g., unexpected changes to a variable) do still apply. –  Matthew Nov 26 '10 at 1:20
    
thank you. looks useful when I want a function to return more than one variable :) (it's not really a "return" but something like that :)) –  Alex Nov 26 '10 at 1:31
    
Alex, true. This is a common paradigm, even used in PHPs core library, eg: php.net/parse_str –  Brenton Alker Nov 26 '10 at 1:43
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Basically if you change $var inside the function, it gets changed outside. For example:

$var = 2;

function f1(&$param) {
    $param = 5;
}

echo $var; //outputs 2
f1($var);
echo $var; //outputs 5
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It accepts a reference to a variable as the parameter.

This means that any changes that the function makes to the parameter (eg, $var = "Hi!") will affect the variable passed by the calling function.

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It is pass by reference.

If you are familiar with C pointers, it is like passing a pointer to the variable.

Except there is no need to dereference it (like C).

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you are passing $var as reference, meaning the actual value of $var gets updated when it is modified inside boo function

example:

function boo(&$var) {
   $var = 10;
}

$var = 20;
echo $var; //gets 20
boo($var);
echo $var //gets 10
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The ampersand ( & ) before a variable ( & $foo ) overrides pass by value to specify that you want to pass the variable by reference instead.

For example if you have this:

function doStuff($variable) {
     $variable++;
}

$foo = 1;

doStuff($foo);
echo $foo; 
// output is '1' because you passed the value, but it doesn't alter the original variable

doStuff( &$foo ); // this is deprecated and will throw notices in PHP 5.3+
echo $foo; 
// output is '2' because you passed the reference and php will alter the original variable.

It works both ways.

function doStuff( &$variable) {
     $variable++;
}

$foo = 1;

doStuff($foo);
echo $foo; 
// output is '2' because the declaration of the function requires a reference.
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4  
Your second example that uses call-time pass-by-reference doStuff(&$foo) is deprecated and shouldn't be used. –  Matthew Nov 26 '10 at 1:16
    
Good to know. Thanks! –  Darryl E. Clarke Nov 26 '10 at 1:19
1  
My comment might be misleading now with the extra code. So to be clear: function doStuff(&$variable) {} is fine, but doStuff(&$variable); at call time is not. –  Matthew Nov 26 '10 at 1:23
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