24

I would like to check if the website can connect to mySQL. If not, I would like to display an error saying that the user should try to access the page again in a few minutes...

I really do not know how to do this ;)

Any help would be greatly appreciated!

string mysql_error ([ resource $link_identifier ] )

But how do I use this?

This just gives me the error, but I want the message to display with any error.

Thanks

2

3 Answers 3

70

Try this:

<?php
$servername   = "localhost";
$database = "database";
$username = "user";
$password = "password";

// Create connection
$conn = new mysqli($servername, $username, $password, $database);
// Check connection
if ($conn->connect_error) {
   die("Connection failed: " . $conn->connect_error);
}
  echo "Connected successfully";
?>
7
  • Can I also place php code inside the "{ // place error here }" because this give me an error
    – Chriswede
    Jan 26, 2012 at 23:07
  • so I could replace code : echo "Please try later." with code : <?php $fade_amount = 60; //In Percentage $box_width = 400; $box_background = 'FFFFFF'; //Hex Color $box_border_width = 1; $box_border_color = '999999'; $close_box = 1; ... Thanks for your help!!!! +1
    – Chriswede
    Jan 26, 2012 at 23:16
  • Remove the <?php and ?> tags from your stuff. Also, I would remove the die() function. I also refined it again to wrap the success stuff in the else block.
    – psyklopz
    Jan 26, 2012 at 23:18
  • Nice! This could lead me to this connection error solution: mysqli_real_connect(): The server requested authentication method unknown to the client
    – Pathros
    Oct 18, 2018 at 16:50
  • How is this supposed to work if $database is never used? May 29, 2019 at 2:14
6

very basic:

<?php 
$username = 'user';
$password = 'password';
$server = 'localhost'; 
// Opens a connection to a MySQL server
$connection = mysql_connect ($server, $username, $password) or die('try again in some minutes, please');
//if you want to suppress the error message, substitute the connection line for:
//$connection = @mysql_connect($server, $username, $password) or die('try again in some minutes, please');
?>

result:

Warning: mysql_connect() [function.mysql-connect]: Access denied for user 'user'@'localhost' (using password: YES) in /home/user/public_html/zdel1.php on line 6 try again in some minutes, please

as per Wrikken's recommendation below, check out a complete error handler for more complex, efficient and elegant solutions: http://www.php.net/manual/en/function.set-error-handler.php

1
  • 2
    Please, do not die..... Echo an error message, but the use trigger_error('some internal error message',E_USER_ERROR);, that way, the error shows up in your logs, as you are unlikely to be the one to catch it yourself on a busy site. Of course, this also assumes log_errors to be on, and display_errors to be off, which should be the default for any production environment.
    – Wrikken
    Jan 26, 2012 at 23:06
-1

Please check this:

$servername='localhost';
$username='root';
$password='';
$databasename='MyDb';

$connection = mysqli_connect($servername,$username,$password);

if (!$connection) {
die("Connection failed: " . $conn->connect_error);
}

/*mysqli_query($connection, "DROP DATABASE if exists MyDb;");

if(!mysqli_query($connection, "CREATE DATABASE MyDb;")){
echo "Error creating database: " . $connection->error;
}

mysqli_query($connection, "use MyDb;");
mysqli_query($connection, "DROP TABLE if exists employee;");

$table="CREATE TABLE employee (
id INT(6) UNSIGNED AUTO_INCREMENT PRIMARY KEY,
firstname VARCHAR(30) NOT NULL,
lastname VARCHAR(30) NOT NULL,
email VARCHAR(50),
reg_date TIMESTAMP
)"; 
$value="INSERT INTO employee (firstname,lastname,email) VALUES ('john', 'steve', '[email protected]')";
if(!mysqli_query($connection, $table)){echo "Error creating table: " . $connection->error;}
if(!mysqli_query($connection, $value)){echo "Error inserting values: " . $connection->error;}*/

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