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This should be simple.... but it's taking a while... Here's the code that's not working (it either shows nothing or the blank state message each time). $show image is the query and I know it's running fine.

// BLANK STATE TOGGLE
$result = mysqli_fetch_array($showimage, MYSQLI_ASSOC);
if($result == ''){
       echo '<p>Sorry- no image.</p>';
} 
else {
    echo '<p>There is an image!</p>';
    }
}
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How do you know it's running fine? Because the only scenario where $result can be ''/false is when the query fails –  Pekka 웃 Jan 31 '11 at 3:43
    
Is $showimage a mysqli_result? Do you have error reporting enabled and display_errors set to "On"? Also, the return value from mysqli_fetch_array is either an array or NULL. You should probably test against either of those instead of an empty string. –  Phil Jan 31 '11 at 3:44
    
Okay - they how do I check for an empty table value? –  WillHerndon Jan 31 '11 at 3:46
    
@Will Start by reading the manual - Returns an array that corresponds to the fetched row or NULL if there are no more rows for the resultset represented by the result parameter. –  Phil Jan 31 '11 at 3:48
    
@Phil- Okay - think then perhaps mysqli_fetch_array is not a good way to check to see if the field is empty? –  WillHerndon Jan 31 '11 at 3:50

2 Answers 2

up vote 0 down vote accepted

If you only want to check for the existence of rows in the result from your query, why don't you simplify it like this

// $db is your MySQLi connection object

$query = 'SELECT COUNT(1) FROM `table` WHERE `something` = ?';
$stmt = $db->prepare($query);
$stmt->bind_param('s', $something);
$stmt->execute();

$stmt->bind_result($rowCount);
$stmt->fetch();
$stmt->close();

if ($rowCount > 0) : ?>
<p>There is an image!</p>
<?php else : ?>
<p>Sorry- no image.</p>
<?php endif ?>
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added my values and it worked. Thanks! –  WillHerndon Jan 31 '11 at 4:36

mysqli_fetch_array returns null if there is no match in the database. So you need to check for null.

You may need to try this:

if $showimage is your query ..

//This should run fine
//$link is ur connection
$new_result = mysqli_query($link,$showimage);


$result = mysqli_fetch_array($new_result, MYSQLI_ASSOC);
if($result == null){
       echo '<p>Sorry- no image.</p>';
} 
else {
    echo '<p>There is an image!</p>';
    }
}
share|improve this answer
    
Your mysqli_query call is confusing. The manual page is here if you feel like cleaning it up - php.net/manual/en/mysqli.query.php –  Phil Jan 31 '11 at 3:56
    
@Phil, Thanks .. –  tsegay Jan 31 '11 at 4:02

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