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i have interface which have drop down list, you have to select an item and click on submit button to view the database in mysql but doesn't work, it give error "Table 'balhaf.$table' doesn't exist"

here is my code the interface


<form method="post" action="list_files.php">
<input name="go" type="submit" value="submit" / >

$dbname = 'balhaf';

if (!mysql_connect('localhost', 'sqldata', 'sqldata')) {
echo 'Could not connect to mysql';

$sql = "SHOW TABLES FROM $dbname";
$result = mysql_query($sql);

if (!$result) {
echo "DB Error, could not list tables\n";
echo 'MySQL Error: ' . mysql_error();

echo '<select name="dropdown" style="width:150px">';

echo '<option value="">Select</option>';

while ($row = mysql_fetch_row($result)) {

echo '<option value="'.$row[0].'">'.$row[0].'</option>';


echo '</select>';
echo '</form>';


my second code "list_files.php"



echo "ok";

$table = $_POST['dropdown'];
// Connect to the database
$dbLink = new mysqli('localhost', 'sqldata', 'sqldata', 'balhaf');
if(mysqli_connect_errno()) {
die("MySQL connection failed: ". mysqli_connect_error());

// Query for a list of all existing files
$sql = 'SELECT `id`, `name`, `mime`, `size`, `created` FROM $table';
$result = $dbLink->query($sql);

// Check if it was successfull
if($result) {
// Make sure there are some files in there
if($result->num_rows == 0) {
    echo '<p>There are no files in the database</p>';
else {
    // Print the top of a table
    echo '<table border="1" align="center">
          <H2 align="center"> Report Table</H>
                <td><b>Size (bytes)</b></td>

 // Print each file
    while($row = $result->fetch_assoc()) {
        echo "
                <td><a style='text-decoration:none;' href='get_file.php?id=    {$row['id']}'>Download</a></td>

    // Close table
    echo '</table>';

   // Free the result
   echo 'Error! SQL query failed:';
   echo "<pre>{$dbLink->error}</pre>";

  // Close the mysql connection
share|improve this question
Well... does the table exist? –  Angelo Geels Aug 21 '13 at 23:47
The table should likely be existing. The problem is a syntax error, since the Server is not able to read the value of $table; –  Sasanka Panguluri Aug 21 '13 at 23:51

3 Answers 3

The error you are seeing is a database error. It has nothing to do with the drop down.

The syntax you are following is incorrect.


$sql = 'SELECT `id`, `name`, `mime`, `size`, `created` FROM $table';


$sql = "SELECT id, name, mime, size, created FROM '$table'";
share|improve this answer
it work with out the double quotes at $table. thank you. –  hadi Aug 21 '13 at 23:54
if you can see my code i can view the data and able to download them, but how to instead of downloading deleting the data. –  hadi Aug 21 '13 at 23:57
It should work with '$table' and putting the entire query in " " You should have missed something. –  Sasanka Panguluri Aug 22 '13 at 0:01

Your code:

$sql = 'SELECT `id`, `name`, `mime`, `size`, `created` FROM $table';

should be either:

$sql = 'SELECT `id`, `name`, `mime`, `size`, `created` FROM '.$table;


$sql = "SELECT `id`, `name`, `mime`, `size`, `created` FROM $table";
share|improve this answer
the last one is still wrong –  developerwjk Aug 21 '13 at 23:54
Outright wrong or might behave unexpectedly? Parsing of double quotes that contain variables should be able to parse $sql string properly to query the database I believe. –  DigitalStage-Suzzett Aug 22 '13 at 0:02

Put {} around your variables when they are inside strings:

 $sql = "SHOW TABLES FROM $dbname"; //might work
 $sql = "SHOW TABLES FROM {$dbname}"; //preferable

Make sure to use double quotes when you put variables inside strings:

 $sql = 'SELECT `id`, `name`, `mime`, `size`, `created` FROM $table'; //wrong
 $sql = "SELECT `id`, `name`, `mime`, `size`, `created` FROM {$table}"; //right

Also, note that this is open to SQL injection attack if you let the user set the variables you are putting inside the string.

share|improve this answer

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