172

I'm trying to use dynamic variable names (I'm not sure what they're actually called) But pretty much like this:

for($i=0; $i<=2; $i++) {
    $("file" . $i) = file($filelist[$i]);
}

var_dump($file0);

The return is null which tells me it's not working. I have no idea what the syntax or the technique I'm looking for is here, which makes it hard to research. $filelist is defined earlier on.

  • 20
    Don't! There is never a good reason to use them. They are, effectively, just an untidy array. Use a proper array instead. – Quentin Feb 13 '12 at 8:37
  • Alright I'm sorry, I just went back and picked an answer for each question I've asked so far. Good thing it's only 7 :P – user1159454 Feb 13 '12 at 8:56
  • 2
    And Quentin, why are they bad practice?? There must be a reason they exist alongside arrays I'd think – user1159454 Feb 13 '12 at 8:57
  • @user1159454 — They are a disorganised mess without all the tools that can be applied to arrays available to them. They exist for ancient legacy reasons and crazy edge cases. – Quentin Feb 13 '12 at 11:20
  • 8
    Crazy edge cases may be exactly why someone would want to ask this question. – Vincent Nov 6 '14 at 19:50
472

Wrap them in {}:

${"file" . $i} = file($filelist[$i]);

Working Example


Using ${} is a way to create dynamic variables, simple example:

${'a' . 'b'} = 'hello there';
echo $ab; // hello there
  • 3
    Is it also possible to create dynamic arrays with the same logic? – dtakis Sep 16 '13 at 13:20
  • I have the same doubt of @dtakis, can you help us? If possible, please take a look at this question. – Marcio Mazzucato Jul 6 '14 at 0:54
  • Wow that's amazing, thanks for the hint!!! – Can Aug 2 '15 at 0:25
  • Jut a warning if you are using this to include a variable (the most useful way IMHO) don't forget to use double quotes. ${'fixedTime$i'} = $row['timeInstance']; gives you a not very useful $fixedTime$i instead of $fixedTime1, $fixedTime2 etc. (Fortunately spotted it almost straight away.) – BeNice Jan 27 '16 at 5:13
  • #Sarfraz, Thanks its working fine...:) – Bikash Ranjan Feb 19 '16 at 9:00
73

Overview

In PHP, you can just put an extra $ in front of a variable to make it a dynamic variable :

$$variableName = $value;

While I wouldn't recommend it, you could even chain this behavior :

$$$$$$$$DoNotTryThisAtHomeKids = $value;

You can but are not forced to put $variableName between {} :

${$variableName} = $value;

Using {} is only mandatory when the name of your variable is itself a composition of multiple values, like this :

${$variableNamePart1 . $variableNamePart2} = $value;

It is nevertheless recommended to always use {}, because it's more readable.

Differences between PHP5 and PHP7

Another reason to always use {}, is that PHP5 and PHP7 have a slightly different way of dealing with dynamic variables, which results in a different outcome in some cases.

In PHP7, dynamic variables, properties, and methods will now be evaluated strictly in left-to-right order, as opposed to the mix of special cases in PHP5. The examples below show how the order of evaluation has changed.

Case 1 : $$foo['bar']['baz']

  • PHP5 interpetation : ${$foo['bar']['baz']}
  • PHP7 interpetation : ${$foo}['bar']['baz']

Case 2 : $foo->$bar['baz']

  • PHP5 interpetation : $foo->{$bar['baz']}
  • PHP7 interpetation : $foo->{$bar}['baz']

Case 3 : $foo->$bar['baz']()

  • PHP5 interpetation : $foo->{$bar['baz']}()
  • PHP7 interpetation : $foo->{$bar}['baz']()

Case 4 : Foo::$bar['baz']()

  • PHP5 interpetation : Foo::{$bar['baz']}()
  • PHP7 interpetation : Foo::{$bar}['baz']()
  • 6
    A good answer to a dubious topic. I'm really glad i don't have to debug such code. – martinstoeckli Mar 3 '16 at 12:56
  • 4
    best answer since it just answers the question without being judgemental – Rid Iculous Jun 3 '16 at 6:20
  • 2
    Yeah, we just had some trouble with some legacy code aswell. Production was PHP5.5, Dev environment was PHP7. I am favouriting this question. – Ogier Schelvis Jul 12 '16 at 9:16
20

Try using {} instead of ():

${"file".$i} = file($filelist[$i]);
4

I do this quite often on results returned from a query..

e.g.

// $MyQueryResult is an array of results from a query

foreach ($MyQueryResult as $key=>$value)
{
   ${$key}=$value;
}

Now I can just use $MyFieldname (which is easier in echo statements etc) rather than $MyQueryResult['MyFieldname']

Yep, it's probably lazy, but I've never had any problems.

2

Tom if you have existing array you can convert that array to object and use it like this:

$r = (object) $MyQueryResult;
echo $r->key;
0

i have a solution for dynamically created variable value and combined all value in a variable.

if($_SERVER['REQUEST_METHOD']=='POST'){
    $r=0;
    for($i=1; $i<=4; $i++){
        $a = $_POST['a'.$i];
        $r .= $a;
    }
    echo $r;
}
0

I was in a position where I had 6 identical arrays and I needed to pick the right one depending on another variable and then assign values to it. In the case shown here $comp_cat was 'a' so I needed to pick my 'a' array ( I also of course had 'b' to 'f' arrays)

Note that the values for the position of the variable in the array go after the closing brace.

${'comp_cat_'.$comp_cat.'_arr'}[1][0] = "FRED BLOGGS";

${'comp_cat_'.$comp_cat.'_arr'}[1][1] = $file_tidy;

echo 'First array value is '.$comp_cat_a_arr[1][0].' and the second value is .$comp_cat_a_arr[1][1];

0

Try using {} instead of ():

${"file".$i} = file($filelist[$i]);

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