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I am following a tutorial, however the author of the tutorial doesn't answer questions - but here is my query

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?

Thanks

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closed as not constructive by gbn, Ignacio Vazquez-Abrams, Your Common Sense, Paŭlo Ebermann, Graviton Oct 1 '11 at 2:14

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance.If this question can be reworded to fit the rules in the help center, please edit the question.

    
I did read the documentation and it didn't work. –  Aasim Azam Sep 30 '11 at 3:56
    
I don't think I need to say anything else. –  Ignacio Vazquez-Abrams Sep 30 '11 at 3:57
    
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
    
@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

3 Answers 3

up vote 8 down vote accepted

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)); 
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+1 for the manual link :D –  Talisin Sep 30 '11 at 3:23
    
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

mysqli_error function requires $myConnection as paramaters, thats why you get the warning

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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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