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I want to create 5 variables of type array all at once. Is this possible? In Java I know you can, but can't find anything about PHP. I'd like to do something like this:

$var1, $var2, $var3, $var4, $var5 = array();
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    Related – Rob Hruska Dec 30 '11 at 15:33
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    @DavidThomas It wouldn't have worked. – Grim... Dec 30 '11 at 15:38
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    Just to add on to the answers, if you do this with arrays, each variable will be distinct arrays that have been initialized to the same thing, not references to the same single array. An example – jprofitt Dec 30 '11 at 15:39
  • @DavidThomas Yes, I tried this and it didn't work. – transformerTroy Oct 23 '12 at 18:43
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    "I'd like to do something like this" is not very precise. Do you want $var1 to equal the first array element, $var2 the second, etc.? – Sebastian Mach Aug 6 '15 at 12:50
94

Yes, you can.

$a = $b = $c = $d = array();
  • FWIW, in any language except PHP, the result would be multiple variables referring to the same array. That is, altering the array in one variable would also alter the array in the other variables. In PHP, because an array assignment does "copy by value" (unless the "reference operator" is used), this does what OP asks - it creates 4 array values, one per variable. [I mention this, so anyone who works in multiple languages will think carefully about what is happening, especially if they use this syntax in different languages.] – ToolmakerSteve Aug 7 at 20:21
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$c = $b = $a;

is equivalent to

$b = $a;
$c = $b;

therefore:

$var1 = $var2 = $var3 = $var4=  $var5 = array();
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    Your answer is confusing The equivalent should be: $b = $a; $c = $a; – valiD May 1 '16 at 22:34
  • $x = [1,2]; $y = [5,6]; $x[] = $y[] = 0; according to your answer $x will become [1,2,[5,6,0]] the actual result is [1,2,0] ie, $c = $a; – Anees Sadeek Nov 16 '16 at 10:11
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    The example just above is not using assignment as is stated in the original example but an array push. The return value for the array push is the value being pushed, not the array being pushed into. When you do an assignment, the return value from the assignment is the assigned variable. Or to put it another way, an array push returns the right side, an assignment returns the left side (which equals the right anyway). So in your example, the right array push returns the zero being pushed to the left assignment. You can see that the final value of $y also has the 0 pushed on. – DjB Oct 20 '17 at 3:20
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$var1 = $var2 = $var3 = $var4=  $var5 = array();
5

Since PHP 7.1 you can use square bracket syntax:

[$var1, $var2, $var3, $var4, $var5] = array(1, 2, 3, 4, 5);

[1] https://wiki.php.net/rfc/short_list_syntax
[2] https://secure.php.net/manual/de/migration71.new-features.php#migration71.new-features.symmetric-array-destructuring

  • NOTE: This useful technique produces a different result than the accepted answer. The accepted answer puts the entire array into each variable. This answer puts first element into first variable, second into second, etc. So $var1 = 1; $var2 = 2; ... Especially useful for returning multiple values from a function - put the return values into an array, and extract them as shown. – ToolmakerSteve Aug 7 at 20:03
2

I prefer to use the list function for this task. This is not really a function but a language construct, used to assign a list of variables in one operation.

list( $var1, $var2, $var3, $var4, $var5 ) = array();

For more information see the documentation.

  • This answer won't work as shown. The right hand side is an empty array. The left hand side attempt to assign the first element of that empty array to $var1. However, there is no first element, so result is an exception (I assume - have not tested). For this answer to make sense, the right hand side must be an array with at least as many elements as there are variables on the left hand side. See onebyzero's answer for a better example. (And see my note there - this answers a different question than OP was asking.) – ToolmakerSteve Aug 7 at 20:34

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