21

I get the following error

Warning: mysqli_error() expects exactly 1 parameter, 0 given

The problem is with this line of the code:

$query = mysqli_query($myConnection, $sqlCommand) or die (mysqli_error()); 

The whole code is

session_start();

require_once "scripts/connect_to_mysql2.php";

//Build Main Navigation menu and gather page data here

$sqlCommand = "SELECT id, linklabel FROM pages ORDER BY pageorder ASC";

$query = mysqli_query($myConnection, $sqlCommand) or die (mysqli_error()); 

$menuDisplay = '';
while ($row = mysqli_fetch_array($query)) { 
    $pid = $row["id"];
    $linklabel = $row["linklabel"];

    $menuDisplay .= '<a href="index.php?pid=' . $pid . '">' . $linklabel . '</a><br />';

} 
mysqli_free_result($query); 

The included file has the following line

$myConnection = mysqli_connect("$db_host","$db_username","$db_pass","$db_name") or die ("could not connect to mysql"); with reference to $myConnection, why do I get this error?
6
  • Something unrelated to the question: "$var" is redundant. That just opens a string, sees the $var, places its value into the string and then drops out of the string. In other words, you can just use $var. Like mysqli_connect($db_host, $db_username....) – Corbin Sep 30 '11 at 9:46
  • 1
    @Corbin, it's not necessarily redundant. Some built-in functions are strict about the types they accept, and "$var" will coerce a non-string variable to a string type for passing to the function. So if $var = 0;, "$var" is "0". – eyelidlessness Sep 30 '11 at 9:49
  • In this situation (mysql_connect), it's definitely redundant. Also, can you name a built in function that is that strict about that? And I would find (string) $var cleaner, but "$var" would make just as much sense (and be shorter). – Corbin Sep 30 '11 at 9:51
  • 2
    I suspect you've overlooked the error message as irrelevant. It's telling you the exact line where the error is, together with a the most clear explanation possible. – Álvaro González Apr 28 '14 at 11:25
  • 1
    @Aasim Azam Your issue is that in mysqli you need to use: mysqli_connect_error() (this is only for connection error!) instead of mysqli_error($myConnection). – Skylex Oct 27 '16 at 2:14
41

mysqli_error() needs you to pass the connection to the database as a parameter. Documentation here has some helpful examples:

http://php.net/manual/en/mysqli.error.php

Try altering your problem line like so and you should be in good shape:

$query = mysqli_query($myConnection, $sqlCommand) or die (mysqli_error($myConnection)); 
2
  • Hi, thanks for the reply, it is now giving me this problem - "mysqli_error() expects parameter 1 to be mysqli" – Aasim Azam Sep 30 '11 at 3:56
  • Although I did what you said it still gave me errors so I changed all mysqli to mysql and it works perfect now! – Aasim Azam Oct 9 '11 at 3:46
6

mysqli_error function requires $myConnection as parameters, that's why you get the warning

5

Change

die (mysqli_error()); 

to

die('Error: ' . mysqli_error($myConnection));

in the query

$query = mysqli_query($myConnection, $sqlCommand) or die (mysqli_error()); 
0
1

At first, the problem is because you did't put any parameter for mysqli_error. I can see that it has been solved based on the post here. Most probably, the next problem is cause by wrong file path for the included file.. .

Are you sure this code

$myConnection = mysqli_connect("$db_host","$db_username","$db_pass","$db_name") or die ("could not connect to mysql");

is in the 'scripts' folder and your main code file is on the same level as the script folder?

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