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Are there any reasons why this might be the case?

Here's the code:

$dbc = mysqli_connect (DB_HOST, DB_USER, DB_PASSWORD, DB_NAME);
echo $dbc;
if(!$dbc){
die('could not open a connection'.mysqli_connect_errno() . mysqli_connect_error());
}

Again, if I replace mysqli with mysql I get a returned dbc resource id (I assume that's good). I would like to use mysqli as I hear it's much better/faster. Right now I'm getting error code 2003.

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4  
If you can you should actually use PDO over Mysqli... Its also much easier to work with in terms of prepared statements and some other things :-) –  prodigitalson Jun 17 '11 at 19:01
1  
instead of die() call mysqli_error to get the error message. You should also understand the differences between the methods beyond mysqli is "better". –  Cfreak Jun 17 '11 at 19:02
    
I second prodigitalson's comment of using PDO –  Cfreak Jun 17 '11 at 19:03
    
I gotta second the use of PDO. It will make your life much better. Drop mysqli_connect and mysql_connect like hot iron. Now, there is a little overhead in terms of complexity, but if you get the understanding you can write yourself a slick function wrapper for PDO to make it trivially usable. –  Kzqai Jun 17 '11 at 19:27
1  
Yeah, also don't get in the habit of using die() on mysql failures, it can quickly attract sql-injection kiddies. I found that one out the hard way. –  Kzqai Jun 17 '11 at 19:30

3 Answers 3

up vote 3 down vote accepted

mysql_connect() and mysqli_connect() use two different default ports from the php.ini file. I wouldn't guess that these would be different than the standard default 3306, but worth a check or try adding the path to the host url.

mysqli_connect:

mysqli mysqli_connect ( ... int $port = ini_get("mysqli.default_port") ... )

mysql_connect:

If the PHP directive mysql.default_host is undefined (default), then the default value is 'localhost:3306'. In SQL safe mode, this parameter is ignored and value 'localhost:3306' is always used.

Edit: I was wrong because I didn't read the manual page far enough.

I think your connection is fine, but you wouldn't want to check the object it returns as you have above. You'd want to use mysqli_connect_errno(). Below is the example from PHP.net.

$mysqli = new mysqli('localhost', 'my_user', 'my_password', 'my_db');

if (mysqli_connect_error()) {
    die('Connect Error (' . mysqli_connect_errno() . ') '
            . mysqli_connect_error());
}

Note:
OO syntax only: If a connection fails an object is still returned. To check if the connection failed then use either the mysqli_connect_error() function or the mysqli->connect_error property as in the preceding examples.

Source

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See procedural coding style –  locoboy Jun 17 '11 at 19:20
    
Yup, you're right. –  Paul DelRe Jun 17 '11 at 19:24
    
Sorry not really following your new answer. What exactly would the new mysqli_connect call look like? –  locoboy Jun 17 '11 at 19:35
    
$dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME, DB_PORT); –  Paul DelRe Jun 17 '11 at 19:46
    
Thank you for this answer, it helped me solve my problem. I figured out that both were using port 3306, but my problem was I used the server ip address instead of localhost for the DB_HOST parameter, which was preventing the connection from working for some reason. Hopefully this helps someone in the future. –  SSH This Jan 5 at 18:33

mysqli_connect and mysql_connect take different parameters and return different values.

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I don't think they do if you use procedural coding style –  locoboy Jun 17 '11 at 19:19
1  
@cfarm54: According to the documentation linked above, the fourth parameter of mysqli_connect (OOP and procedural version) is 'dbname' nd an object is returned in both cases. I was unable to find any documentation that made the fourth parameter match mysql_connect()'s 'new_link'. Can you? –  George Cummins Jun 17 '11 at 19:24
    
No idea but it seems to work if I just replace mysqli with mysql. It still returns a resource id so this isn't the solution. –  locoboy Jun 17 '11 at 19:31

consider using

$dbc= new mysqli(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME);
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