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When I use this code below, it works just fine.

$db_conn = mysqli_connect(HOSTNAME, DBUSERNAME, DBPASSWORD,DATABASE); 

But when I want to create an interactive MySQL connection with this code below.

$db_conn = mysqli_real_connect(HOSTNAME, DBUSERNAME, DBPASSWORD,DATABASE,$flags=MYSQLI_CLIENT_INTERACTIVE); 

I got this error.

Warning: mysqli_real_connect() expects parameter 1 to be mysqli, string given in <source_file> on line 74

How can I use mysqli_real_connect() the right way?

2
  • 1
    Check the PHP Manual – RiggsFolly Jun 14 '20 at 13:14
  • mysqli_real_connect ( mysqli $link [, string $host [, string $username [, string $passwd [, string $dbname [, int $port [, string $socket [, int $flags ]]]]]]] ) : bool – RiggsFolly Jun 14 '20 at 13:16
1

From the manual:

mysqli_real_connect() needs a valid object which has to be created by function mysqli_init().

$mysqli = mysqli_init();
$db_conn = mysqli_real_connect($mysqli, HOSTNAME, DBUSERNAME, DBPASSWORD,DATABASE, 3306, null, MYSQLI_CLIENT_INTERACTIVE); 
0

Object oriented style:-

<?php

$mysqli = mysqli_init();
$mysqli->real_connect('localhost', 'my_user', 'my_password', 'my_db');

mysqli_real_connect() function differs from mysqli_connect()

mysqli_real_connect() needs a valid object which has to be created by function mysqli_init().

1
  • Please add some explanation to your answer such that others can learn from it – Nico Haase Jun 14 '20 at 16:50
-2

Try this..

$mysqli = mysqli_init();
$mysqli->real_connect('localhost', 'db_user', 'db_pass', 'db_name');

Where: db_name represent database name db_pass represent database password

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