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$query = $db->query("SELECT * FROM files WHERE hash = '" . $file . "'");
while($result = $query->fetch_array()) {
  $result[0] = $result['uploadr'];
  $result[1] = $result['name'];
}

This is the code for the query and fetching array, yet it returns null. Any ideas? By the way, I try to get the result using "$result[0]" and both "$result['uploadr'];". Any help with this?

share|improve this question
    
does the query actually return results in mysql? –  jarchuleta Jan 3 '13 at 0:23
    
Yes, I did or die(mysqli_error()); and there were no errors; I also did the query in phpMyAdmin, and it returned the result. –  Kreightive Jan 3 '13 at 0:25
    
What does print_r($result) look like? Results there? –  mattdodge Jan 3 '13 at 0:26
    
If you're using MySQLi, use prepared statements –  Mark Baker Jan 3 '13 at 0:27
1  
@user1944331 What does "didn't work" mean? Error? Empty array? MySQLi documentation says it will return NULL if there are no more rows –  mattdodge Jan 3 '13 at 0:35

1 Answer 1

Do not reassign your array. Just use $result= query->fetch_assoc() and retrieve them like this:

$upload = $result['uploadr'];
echo $upload;

To make your query solid against attacks you should use a prepared statement:

 $query = "SELECT * FROM files WHERE hash = ?"
if (!$stmt = $db->prepare($query))
    {
        echo "Prepared Failed: (" . $db->errno . ") " . $db->error;
    }
    if (!$stmt->bind_param("s", $file))
        {
            echo "Bind Failed: (" . $db->errno . ") " . $db->error;
        }
        if (!$stmt->execute())
            {
                echo "Execution Failed: (" . $db->errno . ") " . $db->error;
            }
            if (!$results = $stmt->get_results())
                {
                    echo "No Results where found: (" . $db->errno . ") " . $db->error;
                }
                while($row = $results->fetch_assoc())
                {
                    $upload = $row['uploadr'];
                    $name = $row['name'];
                    echo $upload."<br>";
                    echo $name;
                }
        $stmt -> close();
        $db -> close();
share|improve this answer
2  
Spaghetti code. It looks terrible. –  Roman Newaza Jan 3 '13 at 1:35
    
@RomanNewaza I do not write with the If(!). I just put that in so he could debug his problem step by step. but thanks for your input. –  ROY Finley Jan 3 '13 at 1:38
    
You should use exceptions instead. It is possible to set them using mysqli_report(), with MYSQLI_REPORT_STRICT. –  tereško Jan 3 '13 at 9:24

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