70

Say for instance I have ...

$var1 = "ABC"
$var2 = 123

and under certain conditions I want to swap the two around like so...

$var1 = 123
$var2 = "ABC"

Is there a PHP function for doing this rather than having to create a 3rd variable to hold one of the values then redefining each, like so...

$var3 = $var1
$var1 = $var2
$var2 = $var3

For such a simple task its probably quicker using a 3rd variable anyway and I could always create my own function if I really wanted to. Just wondered if something like that exists?

Update: Using a 3rd variable or wrapping it in a function is the best solution. It's clean and simple. I asked the question more out of curiosity and the answer chosen was kind of 'the next best alternative'. Just use a 3rd variable.

  • 4
    You can use xor too, like... b = a xor b, a = a xor b, b = a xor b should do the trick... Dunno if theres a function, I'm not good with PHP. – alternative Aug 22 '10 at 14:07
  • 2
    These answers resemble some sort of an obfuscation contest. – Gherman Sep 18 '14 at 7:00

19 Answers 19

99

TL;DR

There isn't a built-in function. Use swap3() as mentioned below.

Summary

As many mentioned, there are multiple ways to do this, most noticable are these 4 methods:

function swap1(&$x, &$y) {
    // Warning: works correctly with numbers ONLY!
    $x ^= $y ^= $x ^= $y;
}
function swap2(&$x, &$y) {
    list($x,$y) = array($y, $x);
}
function swap3(&$x, &$y) {
    $tmp=$x;
    $x=$y;
    $y=$tmp;
}
function swap4(&$x, &$y) {
    extract(array('x' => $y, 'y' => $x));
}

I tested the 4 methods under a for-loop of 1000 iterations, to find the fastest of them:

  • swap1() = scored approximate average of 0.19 seconds.
  • swap2() = scored approximate average of 0.42 seconds.
  • swap3() = scored approximate average of 0.16 seconds. Winner!
  • swap4() = scored approximate average of 0.73 seconds.

And for readability, I find swap3() is better than the other functions.

Note

  • swap2() and swap4() are always slower than the other ones because of the function call.
  • swap1() and swap3() both performance speed are very similar, but most of the time swap3() is slightly faster.
  • Warning: swap1() works only with numbers!
  • 3
    Changed the answer to this one since the question seems to get a lot of attention and you've bench marked them. swap3 is basically the same as the original question wrapped up in function. Proof that simplicity is often better, even if it means extra lines! – Taylor Nov 24 '14 at 18:42
  • 2
    Yep, I upvote your summary too. But you can remove swap1, it does some real bulshit. – Alain Tiemblo Jan 11 '15 at 21:08
  • 7
    swap1 does not work for strings and other objects – m13r Feb 19 '15 at 13:34
  • 1
    Swap2 is clearly best for readability/writability. Swap1 is just presumptuous and Swap3 is the 'non swapping' way to do it. Obviously any option is okay if you make your own wrapper function that works how you want, as swap(&$a,&$b) can be useful. – Deji Apr 5 '16 at 13:28
  • Swap1 was perfect for me as all I wanted was to swap bytes if one was bigger than the other – Steve Byrne Jun 3 '18 at 9:27
80

There's no function I know of, but there is a one-liner courtesy of Pete Graham:

list($a,$b) = array($b,$a);

not sure whether I like this from a maintenance perspective, though, as it's not really intuitive to understand.

Also, as @Paul Dixon points out, it is not very efficient, and is costlier than using a temporary variable. Possibly of note in a very big loop.

However, a situation where this is necessary smells a bit wrong to me, anyway. If you want to discuss it: What do you need this for?

  • 3
    +1 - found the same, and agree, not sure I like it either - using a temp variable is considerably better - as is writing your own swap method if you find yourself doing this often. – Will A Aug 22 '10 at 14:01
  • +1, Beat me to it as well :) I like the idea in principle, but unfortunately the PHP syntax just leaves a bad taste... – Justin Ethier Aug 22 '10 at 14:03
  • wow, super quick response. I take my hat off to all of you! is a nice little trick that. – Taylor Aug 22 '10 at 14:05
  • 27
    as this is the accepted answer for a question that might educate others, it's worth pointing out just how inefficient this is. You're asking PHP to create an array, only to immediately discard it. I benchmarked this approach against using a temporary variable, and found that using a temp variable is over 7 times faster. I would also argue it makes the intent clearer too, as it's a common idiom! – Paul Dixon Aug 22 '10 at 14:55
  • 2
    And since this answerer is sceptical, what made me Google whether PHP had a built-in swap() is iterating through an array where the keys hold value - e.g. they indicate columns in a database, and the values indicate values. However if there isn't a pair, just a value, then you can have the option to use the value as the key (swap) and use a default value. Since in my example I don't need to keep the key, it's not really essential, but if I did need to keep the array index, I'd rather use a (bult-in) swap() call than creating a stupidly named temporary. But, this isn't built-in... – Deji Apr 5 '16 at 13:34
29

Yes, there now exists something like that. It's not a function but a language construct (available since PHP 7.1). It allows this short syntax:

 [$a, $b] = [$b, $a];

See "Square bracket syntax for array destructuring assignment" for more details.

  • not supported for 5.6? – SolidSnake Jan 3 at 3:14
16

It is also possible to use the old XOR trick ( However it works only correctly for integers, and it doesn't make code easier to read.. )

$a ^= $b ^= $a ^= $b;
9

Yes, try this:

// Test variables
$a = "content a";
$b = "content b";

// Swap $a and $b
list($a, $b) = array($b, $a);

This reminds me of python, where syntax like this is perfectly valid:

a, b = b, a

It's a shame you can't just do the above in PHP...

7

Another way:

$a = $b + $a - ($b = $a);
6

For numbers:

$a = $a+$b;
$b = $a-$b;
$a = $a-$b;

Working:

Let $a = 10, $b = 20.

$a = $a+$b (now, $a = 30, $b = 20)

$b = $a-$b (now, $a = 30, $b = 10)

$a = $a-$b (now, $a = 20, $b = 10 SWAPPED!)

  • This works only for numbers and is not a build-in PHP-function. The OP asked for a more general approach and for a predefined function. – pasty Oct 28 '13 at 23:03
  • You are right, missed it looking at all the other answers and implementations. – Naga Krishna Teja Komma Nov 4 '13 at 21:41
  • Though the answer is not correct specifically for the question asked, I'm glad that somebody mentioned this approach, so upvote from me :) – Arman P. Dec 20 '13 at 1:29
4
list($var1,$var2) = array($var2,$var1);
4

This one is faster and needs lesser memory.

function swap(&$a, &$b) {
    $a = $a ^ $b;
    $b = $a ^ $b;
    $a = $a ^ $b;
}

$a = "One - 1";
$b = "Two - 2";

echo $a . $b; // One - 1Two - 2

swap($a, $b);

echo $a . $b; // Two - 2One - 1

Working example: http://codepad.viper-7.com/ytAIR4

  • does not work... ideone.com/sFt2AG – m13r Feb 19 '15 at 13:26
  • @m13r Even in your example the output is equal to mine... – Ron van der Heijden Feb 19 '15 at 15:09
  • @Bondye Please look at the extra !!! I've added to the string. – m13r Feb 21 '15 at 18:59
  • 1
    A note to all: this function only works properly in all cases if $a and $b are the same length, as per @m13r – Élektra Jul 12 '17 at 19:18
4

another simple method

$a=122;
$b=343;

extract(array('a'=>$b,'b'=>$a));

echo '$a='.$a.PHP_EOL;
echo '$b='.$b;
2

Here is another way without using a temp or a third variable.

<?php
$a = "One - 1";
$b = "Two - 2";

list($b, $a) = array($a, $b);

echo $a . $b;
?>

And if you want to make it a function:

    <?php
    function swapValues(&$a, &$b) {
         list($b, $a) = array($a, $b);
     }
    $a = 10;
    $b = 20;
    swapValues($a, $b);

    echo $a;
    echo '<br>';
    echo $b;
    ?>
2

Thanks for the help. I've made this into a PHP function swap()

function swap(&$var1, &$var2) {
    $tmp = $var1;
    $var1 = $var2;
    $var2 = $tmp;
}

Code example can be found at:

http://liljosh.com/swap-php-variables/

2

3 options:

$x ^= $y ^= $x ^= $y; //bitwise operators

or:

list($x,$y) = array($y,$x);

or:

$tmp=$x; $x=$y; $y=$tmp;

I think that the first option is the fastest and needs lesser memory, but it doesn’t works well with all types of variables. (example: works well only for strings with the same length)
Anyway, this method is much better than the arithmetic method, from any angle.
(Arithmetic: {$a=($a+$b)-$a; $b=($a+$b)-$b;} problem of MaxInt, and more...)

Functions for example:

function swap(&$x,&$y) { $x ^= $y ^= $x ^= $y; }
function swap(&$x,&$y) { list($x,$y) = array($y,$x); }
function swap(&$x,&$y) { $tmp=$x; $x=$y; $y=$tmp; }

//usage:
swap($x,$y);
  • bitwise does not work for strings – m13r Feb 19 '15 at 13:28
  • It works (if they have the same length). Tested right now, on PHP5.5 – Dani-Br May 17 '15 at 8:33
  • code: function swap(&$x,&$y) {$x ^= $y ^= $x ^= $y;} $a="aaa"; $b="bbb"; swap($a,$b); echo $a,$b; – Dani-Br May 17 '15 at 8:36
1

If both variables are integers you can use mathematical approach:

$a = 7; $b = 10; $a = $a + $b; $b = $a - $b; $a = $a - $b;

Good blog post - http://booleandreams.wordpress.com/2008/07/30/how-to-swap-values-of-two-variables-without-using-a-third-variable/

1

Yes I know there are lots of solutions available, but here is another one. You can use parse_str() function too. Reference W3Schools PHP parse_str() function.

<?php
    $a = 10;
    $b = 'String';

    echo '$a is '.$a;
    echo '....';
    echo '$b is '.$b;

    parse_str("a=$b&b=$a");

    echo '....After Using Parse Str....';

    echo '$a is '.$a;
    echo '....';
    echo '$b is '.$b;

?>

DEMO

  • Why the hell would you do that ... and what about the case, when $b contains something like b&a=abc? – jirigracik Oct 1 '17 at 11:20
-1
$a = 'ravi';

$b = 'bhavin';

$a = $b.$a;

$b = substr($a,strlen($b),strlen($a));

$a = substr($a,0,strlen($a)-strlen($b));

echo "a=".$a.'<br/>'.'b='.$b;
-2
<?php

swap(50, 100);

function swap($a, $b) 
{
   $a = $a+$b;
   $b = $a - $b;
   $a = $a - $b;
   echo "A:". $a;
   echo "B:". $b;
 }
?>
  • 1
    While answers are always appreciated, this question was asked 6 years ago, and already had an accepted solution. Please try to avoid 'bumping' questions to the top by providing answers to them, unless the question was not already marked as resolved, or you found a new and improved solution to the problem. Also remember to provide some context surrounding your code to help explain it. Check out the documentation on writing great answers for some tips on how to make your answers count :) – Obsidian Age Aug 1 '17 at 0:33
-3

another answer

$a = $a*$b;
$b = $a/$b;
$a = $a/$b;
-10
$a=5; $b=10; $a=($a+$b)-$a; $b=($a+$b)-$b;
  • 3
    This doesn't work, both a and b would be 10. (10+10)-10 = 10 – Gabe Sechan Aug 21 '13 at 16:24

protected by Machavity May 25 at 15:09

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