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I want to make a database and connect to it using any programming language (preferably PHP) but I'm really new to programing and I only know Javascript and HTML5.( I have a website and the host is HostGator.

Does anyone know any good tutorials or want to explain it here?

This is what I have so far:

<?php
    $con = mysql_connect("HOST","USERNAME", "PASSWORD");
    if (!$con)
    {
        die('Could not connect: ' . mysql_error());
    }

    if ($con)
    {
        die('Connection complete');
    }
?>

But I don't get anything unless I add header tags, like:

die('<h5>Connection complete</h5>');

And if I do I get this:

Connection complete'); } ?> 

Please help.

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2  
Try examining the source of the empty webpage - maybe there is something else that is interfering with displaying it properly. (That said, you don't strictly need html/body tags etc. for it to display something in a browser. –  halfer Feb 23 '12 at 21:25
    
Incidentally, when developing web applications, it is normal practise to set up a development environment on your own computer - and then upload when everything is working. Nothing wrong with playing around with a shared hosting account, but it does make for slow development :) –  halfer Feb 23 '12 at 21:28
    
Look at the source in your browser. I suspect that the PHP is not being interpreted by the server and then the browser is trying to treat the whole things as one big non-standard html tag which it cannot display/ –  horatio Feb 23 '12 at 21:28
    
I would also skip the non-descript message like "Connection Complete) and put die(mysql_error()) so at least you know what the connection issue was. –  xXPhenom22Xx Feb 23 '12 at 21:31
    
In case your aim is to lear DB programming, this comment isn't of interest. In case you just need a quick solution to manage data, have a short look here: wakanda.org –  SteAp Feb 23 '12 at 21:33

8 Answers 8

There's no need to rewrite your code much - it basically does what you want.

However, this line doesn't make sense:

if ($con)
{
    die('Connection complete');
}

die() is used when something has gone wrong. if($con) is saying that everything has gone right.

If you replace die('Connection complete'); with:

echo 'Connection complete'; 

everything should work the way you want it to.

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Your code is working. When you put if($con) that means "if I have a connection" so if you are getting the response you stated, then you have a connection. The thing is that in your if condition, you are using die() which is equal to saying "exit the program and on the way out do what is in the parentheses." So your code effectively reads "if you can make a connection, exit the program." Try this

<?php
  $con = mysql_connect("HOST","USERNAME", "PASSWORD");
  if (!$con)
  {
      die('Could not connect: ' . mysql_error());
  }

  $testvar = 5;
  $teststring = 'I have '.$testvar.' dogs';
  echo $teststring;
?>

This basically says "if I don't have a connection exit, otherwise assign a value to a variable, and then use that variable to create another variable, in this case a string, with concatenation(look it up). Then output that string.

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My recomendation is that you look at PHP PDO framework. Is a great framework to work with databases. You can start here PHP PDO's documentaion and form here google for tutorials. But I will strongly recommend the above framework

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Agreed - I don't think there is any reason to use the mysql library any more - people should have switched to PDO already. –  halfer Feb 23 '12 at 21:54

Try:

$connect = mysql_connect("HOST", "USERNAME", "PASSWORD")or die ("Could not connect: ".mysql_error());

and remove the if statements.

share|improve this answer
    
That should work, but does pretty much the same as the original question. –  halfer Feb 23 '12 at 21:26
    
Just out of interest, would you still be able to grab and display the mysql_error() after attempting the connection (as in original question)? –  sooper Feb 23 '12 at 21:28
    
Yes - the 'last error' is held until another mysql_ call is made. –  halfer Feb 23 '12 at 21:48
    
Gotcha, thanks! –  sooper Feb 23 '12 at 21:51

I got this I thinks its easy to modify, I only copy & paste in all my projects

<?

$dbhost = "localhost";  // hostof MYSQL [Normally localhost]
$dbusuario = "dbuser"; // Here its the name that you need to access the db, normally cpanelname_mysqluser
$dbpassword = "dbPass"; //the password you need to access the db
$db = "db"; // Select the data base  you want to work
$conexion = mysql_connect($dbhost, $dbusuario, $dbpassword);
mysql_select_db($db, $conexion);
?>

All the data you need its the same you access to phpmydmin

share|improve this answer
    
"I only copy & paste in all my projects" isn't great advice for a programming website... :) –  amindfv Feb 23 '12 at 21:29
    
@amindfv it's just connection.php why re-write this? –  Eduardo Iglesias Feb 23 '12 at 21:29
    
It's the "only" that I think is not very good advice. When you don't understand something, I think it's better to take a few minutes to understand what went wrong. I also copy-and-paste code sometimes, but you need to be able to write your own, too. –  amindfv Feb 23 '12 at 21:35
    
@amindfv of course I modify it, and I create that I create my own frameworks in PHP, iOS, JS. To use in all my projects, of course are pretty small frameworks with useful functions for me –  Eduardo Iglesias Feb 23 '12 at 21:38

Here is a very good and basic PHP mySQL database connection tutorial.

http://www.w3schools.com/php/php_mysql_connect.asp

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Take a look at PHP's documentation for connecting to a database. Specifically, mysql_connect(). This contains some examples you can use for your own code.

If your question is two-part and you're getting output you're not expecting, please clarify this in your question.

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I think horatio's comment above is on the right track. The server should run the PHP code, and only the output should be sent to the browser. So you should not be seeing the semicolon, curly bracket etc after "Connection complete". The fact that adding and removing the tags makes a difference is also a clue. If you view the page source in your browser and see your PHP code, then the server is not interpreting it as PHP. Check that the file name ends ".php". Let us know how you get on.

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