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I need a simple php if statement that checks if anything is assigned to a variable. If the variable is empty I don't want anything to display but if is there is something assigned to the variable I would like a line of html to be displayed.

Right now, the html is displayed whether the variable is assigned a value or not. Here is the if statement:

if(!isset($twitter)) {
    echo '';
} else {
    echo '<li><a href="http://twitter.com/' . $twitter . '"><span class="ss-twitter ss-icon" style="background-color:' . $iconbgcolor . '; color:' . $iconcolor . '">L</span></a>';
    }

If you want to see the rest of the code for the project is found here.

I have also tried using the empty function but that wouldn't work either.

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closed as too localized by PeeHaa, j0k, tereško, FelipeAls, martin clayton Sep 9 '12 at 10:41

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Check line 175 of your code, it's either assigned &nbsp; or $instance['twitter'] which makes this a set variable and will always return true on !isset($twitter). –  ace Sep 8 '12 at 15:11
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5 Answers

up vote 1 down vote accepted
 $twitter = empty( $instance['twitter'] ) ? '&nbsp;' : $instance['twitter']; 

Variable is always exists
Try:

 $twitter = empty( $instance['twitter'] ) ? '' : $instance['twitter']; 

if(!empty($twitter)) {
    echo '';
} else {
    echo '<li><a href="http://twitter.com/' . $twitter . '"><span class="ss-twitter ss-icon" style="background-color:' . $iconbgcolor . '; color:' . $iconcolor . '">L</span></a>';
    }
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Perfect. Thanks for the help! –  user715564 Sep 8 '12 at 15:16
    
I have to wait five min to accept your answer but I will as soon as I am able to. –  user715564 Sep 8 '12 at 15:17
1  
There should not be a ! in if(!empty($twitter)) { –  xdazz Sep 8 '12 at 15:18
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You set the $twitter as below:

$twitter = empty( $instance['twitter'] ) ? '&nbsp;' : $instance['twitter']; 

So $twitter is always set and won't be empty. '&nbsp;' is not an empty string.

Use null instead.

$twitter = empty( $instance['twitter'] ) ? null  : $instance['twitter']; 
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The code is a little puzzling:

On line 175 it does this:

$twitter = empty( $instance['twitter'] ) ? '&nbsp;' : $instance['twitter'];

Which sets it to either the $instance['twitter'] or ' ' - neither of which are null.

and the on 201 in the same function:

if(!isset($twitter))

Which means that $twitter will be set no matter what. If it was empty on 175, it now contains &nbsp; which means it is set.

I would suggest changing line 175 to:

$twitter = empty( $instance['twitter'] ) ? '' : $instance['twitter'];

and line 201 to:

if(empty($twitter))
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1  
Shouldn't be if(empty($twitter)) with your code? –  xdazz Sep 8 '12 at 15:19
    
@xdazz Yes, and answer is updated. –  Fluffeh Sep 8 '12 at 15:23
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Looks like this line is your problem:

$twitter = empty( $instance['twitter'] ) ? '&nbsp;' : $instance['twitter'];

So $twitter will be set regardless of the index 'twitter' in the $instance array being empty or not. If empty: '&nbsp;'.

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Correct your line

$twitter = empty( $instance['twitter'] ) ? '&nbsp;' : $instance['twitter']; 

to

$twitter = empty( $instance['twitter'] ) ? '' : $instance['twitter']; 

After that, your if condition will work.

Cheers.

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