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I'm getting an array of data from my model, and am using a php foreach statement to display it in a view. I'm adding another layer of logic to show only certain bookmark_ids.

The data is displaying fine; but for some reason the "else" message (tied to the first if clause) isn't showing if no data is returned. I need to figure out how to get that message to display.

<?php 

     if ($bookmark): 
     foreach($bookmark as $b): ?>               

     <?php if ($b->bookmark_id != 0) { ?>               

     <li><?php echo $bk->user_id; ?> <?php echo $bk->bookmark_name; ?></li>

     <?php } ?>


     <?php
      endforeach;
        else:
          print "Your bookmark list is empty.";
    endif;

?>
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2  
If-else condition is wrong.. Plus there's nothing called endforeach in php –  J A May 12 '12 at 23:40
    
Your $bookmark might be not empty, that's why the else doesn't fire - try to echo it in the first if when you know there is no result –  Zoltan Toth May 12 '12 at 23:42
2  
@J A, PHP offers an alternative syntax for some of its control structures; namely, if, while, for, foreach, and switch. In each case, the basic form of the alternate syntax is to change the opening brace to a colon (:) and the closing brace to endif;, endwhile;, endfor;, endforeach;, or endswitch;, respectively. Read Here! –  Zuul May 12 '12 at 23:43
    
@Zuul: Wow, Did not know about this feature in php.. Point taken. Thanks. –  J A May 12 '12 at 23:48
    
@ZoltanToth I have echoed it with no results and still don't get the else message. Any other thoughts on why the else might not be working? –  chowwy May 12 '12 at 23:52
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2 Answers 2

up vote 1 down vote accepted

You a testing if $bookmark exists! I assume that it always exists, either empty or with array of values!

Try this:

<?php 

if (is_array($bookmark) && count($bookmark)>=1): 
  foreach($bookmark as $b): ?>               

  <?php if ($b->bookmark_id != 0) { ?>               

    <li><?php echo $bk->bookmark_name; ?></li>

  <?php } ?>


  <?php
  endforeach;
else:
  print "Your bookmark list is empty.";
endif;

?>

Read: PHP is_array() | count()

EDITED

Related to the recently posted comment "Yes, the array is returning results; I am using the second if statement to limit what is shown. It sounds like my else statement should be tied to the second if clause, instead of the first. The issue for me isn't whether there are results; it's whether after the results are filtered anything remains.":

<?php 

// reset variable
$count = 0;

// if it is an array and is not empty
if (is_array($bookmark) && count($bookmark)>=1): 
  foreach($bookmark as $b):
    if ($b->bookmark_id != 0) {               
      echo '<li>' . $bk->bookmark_name . '</li>';
    } else {
      $count++; // no data, increase
    }

    // check if the counter was increased 
    if ($count>=1) {
      print "Your bookmark list is empty.";
    }
  endforeach;
else:
  print "bookmark not found.";
endif;

?>
share|improve this answer
    
No, he's testing if $bookmark evaluates to true. It could be set to false, 0, "", array(), etc., and still execute the else block. If $bookmark is an object, as I suspect, your code will actually output nothing, as is_array(new ArrayObject) returns false. –  cantlin May 13 '12 at 0:03
    
Edited a minute ago to add the count() ;) –  Zuul May 13 '12 at 0:04
    
Thanks. Am going to test this out now and will get back shortly. –  chowwy May 13 '12 at 0:10
    
Tried this out and it's still not triggering the else clause. –  chowwy May 13 '12 at 0:44
    
Please perform a var_dump($bookmark); before the if clause and place that output on the question! –  Zuul May 13 '12 at 0:47
show 6 more comments

For one reason or another, $bookmark is evaluating to true. Since empty strings and arrays already evaluate to false in PHP, we might reasonably suppose that $bookmark is in fact an object. Since we can iterate over it with foreach, it is probably an instance of ArrayObject, or a class that extends it. We could debug the exact type of $bookmark by writing:

var_dump($bookmark);

Since an empty object instance evaluates to true in a PHP conditional, we need to be more specific about what we're checking for.

if(count($bookmark) > 0):

This should trigger the else condition properly. As a side note, you should really indent your code properly. :)

share|improve this answer
    
Thanks for this; will test it out shortly. I do indent code properly; it never seems to paste correctly when I copy it onto SO. :S –  chowwy May 13 '12 at 0:10
    
Apparently empty() doesn't actually work on an empty ArrayObject – edited to use the more reliable count(). –  cantlin May 13 '12 at 0:13
    
Okay, thanks. I tested out the count function, and the else condition still isn't showing. Sidenote: earlier I had misspelled a variable and got an error; the else clause showed under the error. –  chowwy May 13 '12 at 0:41
    
Okay, the var_dump is in the question –  chowwy May 13 '12 at 0:55
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