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Good day guys,

I've made a sweet favorites function with php mysql and ajax, and its working great. Now I want to show 'favorite' when favorite = 0 and show 'unfavorite' when favorite = 1

    if ($favorites == 0) {
    $favorite = '<a href="#" id="' .($id). '" class="favorite_button">Favorite</a>';
}

if ($favorites == 1) {
    $unfavorite = '<a href="#" id="' .($id). '" class="unfavorite_button">unFavorite</a>';
}

and echo it in the row as :

<div id="favorites">' .($favorite). ' ' .($unfavorite). '</div>

The problem is: when favorite = 0, both $favorite and $unfavorite are being shown. When favorite = 1 only $unfavorite is being shown correctly. Of course it should be $favorite OR $unfavorite. I assume the problem is clear and simple to you, please assist :)

Thanks in advance

share|improve this question
    
Could you post the surrounding code as well? This should work. –  Dogbert Nov 10 '11 at 13:50
    
In your description you're referring to favorite but your variable in code is $favorites. Typo? Please show the code that sets the variable $favorites. –  Michael Berkowski Nov 10 '11 at 13:50
    
What do you get when you var_dump($favorites)? Does this also happen to be in any sort of loop? –  jprofitt Nov 10 '11 at 13:50
    
Everyone, thanks a lot! Got the solution :) See Harmen's solution –  Maarten Hartman Nov 10 '11 at 14:24

5 Answers 5

up vote 3 down vote accepted

It's easier to use just one variable:

$text = ''
if ($favorites == 0) {
  $text = '<a href="#" id="' .($id). '" class="favorite_button">Favorite</a>';
} else {
  $text = '<a href="#" id="' .($id). '" class="unfavorite_button">unFavorite</a>';
}

...

echo $text;
share|improve this answer
    
thanks a lot everyone for helping me out, Harmens solution worked :) Learned something again! Have a nice day –  Maarten Hartman Nov 10 '11 at 14:18

If you want to check $favorite, you are using the wrong variable in your control statement. Also, it is better coding practice to use elseif rather than if for that second if. One more thing: it's easier to manage one resulting variable.

$output = "";
    if ($favorite == 0) {
    $output = '<a href="#" id="' .($id). '" class="favorite_button">Favorite</a>';
}

elseif ($favorite == 1) {
    $output = '<a href="#" id="' .($id). '" class="unfavorite_button">unFavorite</a>';
}

...

echo $output; // Or whatever you want to do with your output
share|improve this answer

Is $favorites an integer?

Anyway try using three equal signs (===) or else instead of the second if:

if ( $favorites === 0 )
{
  // ...
}
else // or if ($favorites === 1)
{
  // ...
}
share|improve this answer

You're making a toggle, so you only need one variable:

if(empty($favourites)){
   $fav_toggle = '<a href="#" id="' .($id). '" class="favorite_button">Favorite</a>'; 
} else {
   $fav_toggle = '<a href="#" id="' .($id). '" class="unfavorite_button">unFavorite</a>'; 
}

echo $fav_toggle;
share|improve this answer

Same code is working on me if I assigned $favorites = 0; or $favorites = 1;

You can also use if else

$favorites = 1;

if ($favorites == 0) {
    $favorite = '<a href="#" id="' .($id). '" class="favorite_button">Favorite</a>';
}

else if ($favorites == 1) {
    $unfavorite = '<a href="#" id="' .($id). '" class="unfavorite_button">unFavorite</a>';
}
share|improve this answer

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