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So I'm not sure as to php is not creating a database,

Let me show what my code looks like first, and then I will quote what warning/error it's giving me:

<?php
//connection
$con = mysqli_connect("localhost","root","1monica1");

//check connection
if (mysqli_connect_errno($con))
{
echo "Failed to connect to MySQL: " . mysqli_connect_error();
}

//creating a data base
// data base is called alarm_db
$sql = "CREATE DATABASE alarm_db";
if (mysql_query($sql,$con))
{
echo "Database alarm_db created sucessfully";
}
else
{
echo "Error creating database: " . mysqli_error($con);
}

?>

The error and warning I keep getting is this:

Warning: mysql_query(): A link to the server could not be established in B:\DropBox\Dropbox\EbadlyAgha\Ebad\reminders.php on line 51 Error creating database:

line 51 is where the if (mysql_query($sql,$con)) is. Also, it wont give me the mysqli_error($con). It just blank.

My mysql connection is fine, because I never see "Failed to connect to MySql" statement.

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3 Answers 3

up vote 5 down vote accepted

It should be in mysqli_* while you executing DB creating query.

if (mysqli_query($sql,$con)) {
    echo "Database alarm_db created sucessfully";
}

Try to avoid mysql_* statements due to the entire ext/mysql PHP extension, which provides all functions named with the prefix mysql_*, is officially deprecated as of PHP v5.5.0 and will be removed in the future.

There are two other MySQL extensions that you can better Use: MySQLi and PDO_MySQL, either of which can be used instead of ext/mysql.

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Your connection is being generated by the mysqli library:

$con = mysqli_connect

but you are trying to query it using the mysql library:

mysql_query($sql,$con)

You need to be consistent about which library you use. Stick to mysqli throughout (since mysql is deprecated).

Note that mysqli_query expects the connection before the SQL:

mysqli_query($con, $sql); 
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Yes this worked, thanks. –  Ebadly.Decipher Aug 5 '13 at 6:08

You can try this to create database using php:

<?php 
$con=mysql_connect('localhost','root','');
$query=mysql_query('create database alarm_db') or die(mysql_error());
if($query)
 {
  echo'Database is created';
  }
 else
 {
echo'Database is not created';
 }
?>
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