63

I've been coding personal scripts for years in PHP and get used to turn off Error display. I'm about to release some of these scripts and would like to do it the proper way.

The only reason why I turn off error display is to avoid having to test every single var, prior using it, thanks to isset().

So, here is my question:

Is there a better way to declare multiple vars than this ?

<?php
  // at the begining of my main file
  if (!isset($foo))  ($foo = '');
  if (!isset($bar))  ($bar = '');
  if (!isset($ping)) ($ping = '');
  if (!isset($pong)) ($pong = '');
  // etc. for every single var
?>

Something like this for instance :

<?php
  var $foo, $bar, $ping, $pong;
?>
19
  • 3
    Expecting var $foo to be an empty string seems strange. What operations are you doing later that's causing problems?
    – Mike B
    Jun 14, 2012 at 0:35
  • 2
    I don't quite understand what this is about. You're testing a variable before you set to check if you can set it? Are you coming from another language where you have to set variables like dim d as Integer? I think what you really need is some encapsulation like functions, classes, etc, so you're out of the global namespace, and then get in the habit of declaring variables at the head of each function/class method. Jun 14, 2012 at 0:35
  • @MikeB: a simple test. If the var is not declared in first place, a simple if ($foo == 'blabla') will prompt an error. Jun 14, 2012 at 0:44
  • Where are the variables coming from then? Are you using something like extract($_GET) to create variables and you don't actually know what's been created?
    – Mike B
    Jun 14, 2012 at 0:45
  • What does that error say? Is it a warning? Jun 14, 2012 at 0:47

7 Answers 7

100
<?php
  $foo = $bar = $ping = $pong = '';
?>

If it's your script and you know which variables where you use, why you want spend recourses to check if the variable was declared before?

6
  • 14
    Also, if you just want to "declare" them for some reason, you can put them all on one line with ;, as in $foo; $bar; $far; $boo;, all on one line. Note for the uninitiated, $foo, $bar, $far, $boo; throws an (parse) syntax error, killing the script. Jun 14, 2012 at 1:21
  • 1
    @JaredFarrish $foo; $bar; $far; $boo; will still throw Notice: Undefined variable: ... Jul 19, 2016 at 16:46
  • 1
    Will this not make all values change if you change the value of only one variable?
    – molerat
    Jul 13, 2018 at 9:31
  • 3
    molerat, NO, after the variables are declared you can change them separately and each one will keep it's own value.
    – DaneSoul
    Jul 14, 2018 at 17:18
  • @molerat you program in python too, dont u?? i just started programming in python and found out the hard way that changing one in the chain changes all the others. actually, wait, it wasnt python. it was another language
    – oldboy
    Nov 11, 2018 at 23:00
13

I posted this in a comment earlier, but someone suggested I submit it as an answer.

The shortest and simplest way I can think of, is to do:

$foo = $bar = $ping = $pong = '';

I often prefer to set things to false, instead of an empty string, so that you can always do checks in the future with === false, but that is just a preference and depends on how you are using these variables and for what.

8

Your if() with isset() attempt is the proper way of doing that!

But you can write it a little bit shorter/more readable, using the Ternary Operator:

$foo = isset($foo) ? $foo : '';

The first $foo will be set to the value after the ? when the condition after the = is true, else it will be set to the value after the :. The condition (between = and ? ) will always be casted as boolean.

Since PHP 5.3 you can write it even shorter:

$foo = isset($foo) ?: '';

This will set $foo to TRUE or FALSE (depending on what isset() returns), as pointed by @Decent Dabbler in the comments. Removing isset() will set it to '' but it will also throw an undefined variable notice (not in production though).

Since PHP 7 you can use a null coalesce operator:

$foo = $foo ?? '';

This won't throw any error, but it will evaluate as TRUE if $foo exists and is empty, as opposed to the shorthand ternary operator, that will evaluate as FALSE if the variable is empty.

4
  • 1
    Honest question, why would you want to have $foo be an empty string vs null? I'm going in circles trying to come up with a circumstance
    – Mike B
    Jun 14, 2012 at 0:38
  • I'm sure the questioner simply wants to set an default value, in this case an empty string. And keep in mind '' != NULL or not set ;-)
    – powtac
    Jun 14, 2012 at 0:39
  • I don't know, I'm with @MikeB, I've been a recovering PHP developer going on eight years and I've never systematically done anything like this, or had a problem not doing it? Jun 14, 2012 at 0:41
  • 6
    $foo = isset($foo) ?: ''; will not do what you think it will do. If $foo is set, it will assign true to $foo regardless of $foo's initial value. Jun 14, 2012 at 4:17
5

A somewhat round-about way of doing this is if you put the name of your variables in an array, and then loop them with a Ternary Operator, similar to powtac's answer.

$vars = array('foo', 'bar', 'ping', 'pong');
$defaultVar = '';

foreach($vars as $var)
{
    $$var = isset($$var) ? $$var : $defaultVar;
}

As mentioned in other answers, since version 5.3, PHP allows you to write the above code as follows:

$vars = array('foo', 'bar', 'ping', 'pong');
$defaultVar = '';

foreach($vars as $var)
{
    $$var = isset($$var) ?: $defaultVar;
}

Note the changed Ternary Operator.

2

In OOP you can use this approach:

protected $password, $full_name, $email;

For non-OOP you declare them just in code they will be Undefined if you didn't assign any value to them:

$foo; $bar; $baz;

$set_foo =  (isset($foo)) ? $foo : $foo = 'Foo';
echo $set_foo;
0

Why not just set them?

<?php
$foo = '';
$bar = '';
//etc
?>

If you're trying to preserve the value in them, then yes that's the correct way in general. Note that you don't need the second pair of brackets in your statements:

if (!isset($foo)) $foo = '';

is enough.

4
  • Because of the isset in the question, I think the OP is indicating there's a chance that the variables might already have a value set to them. Jun 14, 2012 at 0:35
  • 2
    if you were going to just set then, I'd do: $foo = $bar = $ping = $pong = ''; Jun 14, 2012 at 0:36
  • @pocketfullofcheese - Why don't you add that as a (what I know is correct) answer? Jun 14, 2012 at 1:22
  • I supposed I should have. Thanks @JaredFarrish for the suggestion Jun 15, 2012 at 1:53
-3

To fix the issue of

  <?php
  $foo = $bar = $ping = $pong = '';
  ?>

throwing

Notice: Undefined variable: ...

  <?php
  @$foo = $bar = $ping = $pong = '';
  ?>

It will not fix it but it will not be shown nd will not stop the script from parsing.

1
  • 1
    suppressing errors/notices/warning isn't the same as fixing them and this practice should be avoided.
    – treyBake
    Jun 21, 2019 at 15:34

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