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I am new in php, I created a page with mysql db connectivity but when the page is run it displays a blank page. If i write a echo statement before the connection statement then only echo statement is displayed and nothing else is displayed. Here is my code..

  $con = mysql_connect('localhost','root','admin');
mysql_select_db('testdb',$con);
if ($con) 
{
  die('Connected to database!');
}
$sql = " INSERT INTO customer ([Name],[Website]) VALUES('$_POST[fname]','$_POST[lname]') ";
$result = mysql_query($sql, $con);
if(!$result)
{
echo mysql_error();
exit;
}
// close the connection
mysql_free_result($result); 
mysql_close($con);

Anyone please help why this problem occurs and is there is anything wrong in the page.


Display Errors was off. I edit in the php.ini file 'display_errors' On. But still the connectivity issue is not resolved. It displays an fatal error at connectivity line statement.

fatal error: Call to undefined function mysql_connect()
share|improve this question
    
what about enabling error reporting at php.ini ? –  SergeS Jul 15 '11 at 10:10
1  
I'm assuming you're doing this locally, following one of PHP tutorials that use mysql_* functions which aren't bundled with php by default anymore. Try to use mysqli_ functions and take a look at www.php.net/mysqli for details if something is unclear. –  Michael J.V. Jul 15 '11 at 10:10
    
Try after giving this error_reporting(E_ALL); ini_set('display_errors','On'); –  Shameer Jul 15 '11 at 10:12
    
Shouldn't it be if ( ! $con) ie youre missing not in the if? –  ain Jul 15 '11 at 10:12
3  
Boy ----------- such errors are not supposed to be post on STACK -------- at least spend few hours with code and then post your problem ---- you will become good at THE ART OF DEBUGGING –  Jatin Dhoot Jul 15 '11 at 10:15

4 Answers 4

    $con = mysql_connect('localhost','root','admin');
    mysql_select_db('testdb',$con);
    if (!$con) 
    {
      die('Not Connected to database!');
    }
    $sql = " INSERT INTO customer ([Name],[Website]) VALUES('$_POST[fname]','$_POST[lname]') ";
    $result = mysql_query($sql, $con);
    if(!$result)
    {
    echo mysql_error();
    exit;
    }
else
{
echo 'Query Success';
}
    // close the connection
    mysql_free_result($result); 
    mysql_close($con);
share|improve this answer

As you have

die('Connected to database!');

this will stop the script here, script written after it will not be executed , use instead

echo('Connected to database!');

share|improve this answer
    
Also replace [Name],[Website] with Name, website in your SQL statement –  Syed Qarib Jul 15 '11 at 10:14
    
Quarib: [Name],[Website] is not syntax error –  genesis Jul 15 '11 at 13:32

[Name],[Website] should be replace with Name, website

share|improve this answer
    
also if ($con) should be if (!$con) –  Jatin Dhoot Jul 15 '11 at 10:13
    
I think you should try doing basic things, as soon as you are getting error and you are posting on Stack --- you will not be able to learn the crucial art --- THE ART OF DEBUGGING –  Jatin Dhoot Jul 15 '11 at 10:14

your script dies everytime it success to connect to DB

change

if ($con) 
{
  die('Connected to database!');
}

to

if (!$con) 
{
  die('Connected to database!');
}
share|improve this answer

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