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this is the code that I have been using to try and connect to a database and retrieve data from it but it's not showing images properly. All other content is displayed properly.

//This php quote is test2.php
<?php

$dbhost='localhost';
$dbuser='root';
$dbpass='';
$db='dynamic';

$con = mysql_connect("localhost","elemental","");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }



mysql_selectdb($db);

?>


<?php
include 'test2.php';

$query="selelct * from data";
$result=mysql_query($query);

while ($data=mysql_fetch_array($result)) {

echo '<h3>' . $data['id'] . '</h3>';
    echo '<h3>' . $data['name'] . '</h3>';

}


?>
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closed as not a real question by Charles, kiamlaluno, hakre, Alessandro Minoccheri, InfantPro'Aravind' Dec 10 '12 at 8:12

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
You're failing to check the result of mysql_query. It returns false when there is an error instead of returning the statement handle that mysql_fetch_array expects. This is also a duplicate of every single last one of those questions in the Related sidebar. Heads up! Future versions of PHP are deprecating and removing the mysql_ family of functions. If you're still learning PHP, now would be a great time to switch to PDO or mysqli. –  Charles Dec 10 '12 at 4:51
    
its mysql_select_db instead of mysql_selectdb –  Pankit Kapadia Dec 10 '12 at 4:52
    
selelct * from data should be select * from data –  Ashwini Agarwal Dec 10 '12 at 4:53
    

2 Answers 2

You have 2 typos:

$query="selelct * from data";  

should be:

$query="select * from data";  //select not selelct

and

mysql_selectdb($db);  

should be:

mysql_select_db($db);
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1  
FWIW, the odd instance of mysql_selectdb is a PHP4-ism. The extra underscore was added later, and an alias was added. Seeing it is a sure-fire sign that the user has been reading hilariously out-of-date tutorials, or never improved upon their original PHP knowledge. –  Charles Dec 10 '12 at 5:03

A few oversights or issues in your code. Including repeating yourself for no known reason, and failing to test your variables/actions as you progress.

<?php

$dbhost = 'localhost';
$dbuser = 'root';
$dbpass = '';
$dbbase = 'dynamic';

// WAS
// $con = mysql_connect("localhost","elemental","");
// why have your variables above if you hardcode them?
if( !( $con = mysql_connect( $dbhost , $dbuser , $dbpass ) ) ){
  error_log( 'MySQL Server Connection Failed - '.mysql_error() );
  // Never echo your errors publicly
  die( 'Cannot connect to database, but I am not going to show you why publicly.' );
}
if( !mysql_select_db( $dbbase ) ){
  error_log( 'MySQL Database Connection Failed - '.mysql_error() );
  // Never echo your errors publicly
  die( 'Cannot connect to database, but I am not going to show you why publicly.' );
}

include( 'test2.php' );

// WAS
// $query="selelct * from data";
// check your spelling!
$query = 'SELECT * FROM data';

if( !( $result = mysql_query( $query ) ) ){
  error_log( 'MySQL Query Failed - '.mysql_error() );
  die( 'Cannot query the database, but I am not going to show you why publicly.' );
}
if( !mysql_num_rows( $result ) ){
  echo 'No Records Found';
}else{
  while( $d = mysql_fetch_array( $result ) ){
    echo '<h3>'.$d['id'].'</h3><h3>'.$d['name'].'</h3>';
  }
}
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