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Here is my following tutorial code from "Learning PHP MYSQL and Javascript" by OReilly.

<?php 
//require_once = 'login.php';

$db_database = 'publications';
$db_hostname = 'localhost:8888';
$db_username = 'root';
$db_password = 'root';


$db_server = mysql_connect($db_hostname, $db_username, $db_password);
if(!$db_server) die("Unable to connect to MYSQL: ". mysql_error());

mysql_select_db($db_database)
    or die("Unable to connect to database: " . mysql_error());

$query = "SELECT * FROM classics";
$result = $mysql_query($query);

if(!$result) die ("Could not query: " . mysql_error());
$rows = mysql_num_rows($result);

for($j = 0; $j < $rows; ++$j)
{
    echo 'Author: ' . mysql_result($result, $j, 'author') . '</br>';
    echo 'Title: ' . mysql_result($result, $j, 'title'). '</br>';
    echo 'ISBN: '.mysql_result($result, $j, 'isbn').'</br>';
}

?>

However, I'm getting an error when trying to connect. The browser says it's a 500 error (which really isn't that helpful). When I take out the lines $db_username = 'root'; $db_password = 'root'; I get another error saying: "Unable to connect to database: Access denied for user ''@'localhost' to database 'publications'".

Can anyone help diagnose the problem?

Thanks!

share|improve this question
    
Is root really your root password or are you just putting that there for example's sake? I should also add - have you ever successfully connected to this db? – kinakuta Jun 13 '11 at 4:36
    
Do you have the username, password set to root? – Muhammad Zeeshan Jun 13 '11 at 4:38
2  
In case of fatal errors (500) raise the error_level in the php.ini and/or look into the webservers error.log. – mario Jun 13 '11 at 4:41
    
Even though most beginner tutorials tell you to, it's actually a bad idea to display the mysql_errors() because it can give attackers information about your database that they could exploit. I'll usually build some sort of developer mode into my applications. Something like setting a dev_mode = false at the top of my database include and then testing for dev_mode before displaying an error message if(!$result) die ("Database error" . (dev_mode === true ? mysql_error() : '')); Better yet, store dev_mode in a session object and only set it through a password protected page. – Useless Code Jun 13 '11 at 5:01
2  
This question appears to be off-topic because it is about a typo – Benjamin Gruenbaum Dec 29 '13 at 16:06
up vote 7 down vote accepted

Change this

$result = $mysql_query($query);

to this

$result = mysql_query($query);

Function name is mysql_query not $mysql_query, $ is used in variable names.

Also, instead of trying to "see" your code immediately in a browser window you could use a PHP command line instead. If your file is called foo.php you coudl do:

>> php foo.php
PHP Notice:  Undefined variable: mysql_query in /var/www/foo.php on line 17
PHP Fatal error:  Function name must be a string in /var/www/foo.php on line 17

As you see, the error message is pretty clear. Because of using $mysql_query it thinks that mysql_query is a variable, but such a variable is not defined somewhere.

share|improve this answer
    
nice catch thanks! – locoboy Jun 13 '11 at 4:42

Do you try connecting manually to your db by connection infor u set up in code,

use phpmysql to connect to db first , change phpmysql config file to match the mysql server authentication infor, then ensure all are right before coding anything further.

share|improve this answer

One thing I can suggest is using 'localhost' as the host name (without the port). Otherwise maybe try an empty string as the password.

EDIT: Oh the answer below would be the problem, lol.

share|improve this answer

please write this

mysql_select_db($db_database, $db_server)

instead of

mysql_select_db($db_database)

And write this

$result = mysql_query($query);

instead of

$result = $mysql_query($query);

One more thing please check your host name :$db_hostname = 'localhost:8888';

By general it is $db_hostname = 'localhost:8080';

So please confirm one more time

share|improve this answer

$ symbol should be used only for variables not for functions
$var=5;// variable declaration
if you want to declare function syntax $ should not be used
Ex: $function_var = mysql_query($query);
In this function_var is variable and mysql_query($query) is function.

share|improve this answer
    
This does not add much to other answers. – Jan Doggen Jul 19 '15 at 20:30

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