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<?php echo (isset($var)) ?: $var; ?>

Is this syntax correct? What will this display if $var won't be set, empty string or null? Is it ok to use this?

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6  
I don't think this makes sense. It would echo true when $var is set but $var when $var is not set. –  Waleed Khan Mar 4 '13 at 15:43
    
Is there any shortcut to display what I want - null when $var is not set? –  user2124857 Mar 4 '13 at 15:47
    
Also see: stackoverflow.com/questions/1013493/coalesce-function-for-php for more info. –  w00 Mar 4 '13 at 15:47
    
Yes there is a shortcut, see my answer. –  Husman Mar 4 '13 at 15:49
    
echo (isset($var)?'YES':'NO'); –  KA_lin Mar 4 '13 at 15:51

7 Answers 7

This:

<?php echo (isset($var)) ?: $var; ?>

do the same as this:

<?php
 if (isset($var)) {
  // do nothing
 } else {
  echo $var;
 }
?>

So you are trying to display variable if its empty/null/etc...

If function:

<?php $k= (cond ? do_if_true : do_if_false); ?>

$k could be new variable, echo, etc.
cond - isset, $z==$y, etc.

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3  
That's actually not true. It's functionally equivalent to: echo isset($var) ? isset($var) : $var which is technically not the same as your example. –  Colin M Mar 4 '13 at 15:52
    
($var) ?: '' would solve all of my problems, though as far as I know this isn't equivalent to isset($var) ? $var : '', am I right about this one? –  user2124857 Mar 4 '13 at 15:58
    
I just tried to run your example and server didn't display any results without '', i get error syntax error, unexpected ':', so it might be necessary –  miszczu Mar 4 '13 at 16:04

The syntax is correct, the usage is not. Say here:

$var = something();
echo $var ?: 'false';

This is equivalent to:

$var = something();
if ($var) {
    echo $var;
} else {
    echo 'false';
}

or shorthand for $var ? $var : 'false'.

Your example is pointless since it outputs the result of isset($var) (true) if $var is set and $var otherwise.

You need echo isset($var) ? $var : null or if (isset($var)) echo $var, and there's no shortcut for it.

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The syntax is fine.

If $var is set then it will output, if it is not, it will throw an Notice about the echo of $var which is unset.

if your error_reporting is set to E_NONE then you will just see a white screen, if the $var is set then you will see the value of $var

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This will echo $var either way.

Since PHP 5.3, it is possible to leave out the middle part of the ternary operator. Expression expr1 ?: expr3 returns expr1 if expr1 evaluates to TRUE, and expr3 otherwise.

So if $var is set, it echos $var (since that evaluates to TRUE), if its not set to anything or evaluates to false, your manually asking it to echo $var anyway.

ideally you want:

(condition  ?  if_true_then_do_this : if_false_then_do_this)

in shorthand this becomes

   (condition ? ? false)

and since you have specified $var in both places, you will get $var, either way. You want this:

echo ($var?:"null");
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Won't this generate a notice if $var won't be set? –  user2124857 Mar 4 '13 at 15:51
    
no, it will echo null. I just created a test script with that one line in it and it printed null to the screen. –  Husman Mar 4 '13 at 15:54
    
If I set $var = 5; or someting like that, it prints out the value of $var. –  Husman Mar 4 '13 at 15:54
    
Then it means that if(isset($var)) is exactly the same as if($var) ? I've always wondered if it's ok to do that :D –  user2124857 Mar 4 '13 at 15:55

Nope, this syntax is incorrect.
By the time of echoing, all variables have to be set and properly formatted.
Otherwise means a developer have no idea where their variables come from and what do they contain - a straight road to injection.

So, the proper syntax would be

<?=$var?>

As for the ternaries - I don't like them.

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To get technical - the syntax is correct. The logic is not. –  Colin M Mar 4 '13 at 15:56

The code no have sense, generates a notice or echo 1, you can't print a $var which isn't set

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"isn't isset" Really? Really?! ಠ_ಠ –  BoltClock Mar 4 '13 at 15:52
    
Corrected :P, i'm not english, and you can also not put -1 at random –  Sam Mar 4 '13 at 15:55
<?php (isset($var)) ? echo "" : echo $var; ?>

you can use this one.

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If $var is set you echo empty string and if isn't set you echo $var?? Wtf? –  Sam Mar 4 '13 at 16:08
    
@Sam that's OP's broken logic. ¯\_(ツ)_/¯ –  Sammitch Mar 4 '13 at 16:09

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