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$mysqlServer = "***";
$mysqlDb = "***";
$mysqlUser = "***";
$mysqlPass = "***";

$conn = mysqli_connect($mysqlServer, $mysqlUser, $mysqlPass) or die("failed to connect to db");
mysqli_select_db($conn, $mysqlDb) or die("failed to connect select db");

i have this code, and its working without any problem. But if i try to input a wrong sql server or test it to perform an error. This will display:

Warning: mysqli_connect(): (HY000/2002): A connection attempt failed because the connected party did not properly respond after a period of time, or established connection failed because connected host has failed to respond.
failed to connect select db

i don't want the warning to display if ever theres a problem in connecting the sql server. i just want my own error to display.

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1  
put an @ sign in front of the command like @mysqli_connect –  DevZer0 Jun 20 '13 at 8:24

3 Answers 3

up vote 6 down vote accepted

2 possible options:

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3  
+1 for error_reporting. using the @ is very dirty. –  Gerald Schneider Jun 20 '13 at 8:24
    
IMHO, cases like this, when a function unconditionally triggers a pointless warning for an error condition you already handle, are a legit use case for error suppressor operator. In production servers you normally want to only log warnings that actually relate to a bug in your code. –  Álvaro G. Vicario Jun 20 '13 at 8:28

putting @ sign before each function hide errors

$conn = @mysqli_connect($mysqlServer, $mysqlUser, $mysqlPass) or die("failed to connect to db");
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Even if this works, PLEASE, don't do this in production code... Actually, try not to do this altogether ^^ –  STT LCU Jun 20 '13 at 8:28

Try this one:

$conn = mysqli_connect($mysqlServer, $mysqlUser, $mysqlPass, $mysqlDb);

Pass the DB name with the connect as fourth param.

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You've misunderstood the question. –  Álvaro G. Vicario Jun 20 '13 at 8:48

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