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I'm trying to call a database for the first time in PHP, and this query is causing my code to break. Note that I've tested the connection to be good. The culprit is mysql_query(). Can anybody spot what might be going wrong? The table name is "users" and the entry under the 'Name' column is 'mvalentine'. Everything matches case as far as I can tell.

dbInit.php

<?php
$connection = mysql_connect('localhost', 'root', 'password');
$db = mysql_select_db('scaleup');
if ($db) {
    $user = mysql_query("SELECT ID FROM 'users' WHERE 'Name' = 'mvalentine'");
}
else {
die ('Error 01: Connection to database failed.');
}

?>

This modified code is now returning something. The value 'users' in the ajax call is now returning "false"

The value being returned should be '1'

ajax response:

 <?php
include('dbInit.php');
include('objects.php'); //irrelevant, all code working properly

$layout = new Layout();
$bids = new Bids();
$out = array('layout' => $layout->_board, 'height' => $layout->_height, 'width' => $layout->_width,
                'bids' => $bids->_board, 'maxBids' => $bids- >_maxBids, 'users' => $user);
$out = json_encode($out);
echo $out;
?>
share|improve this question
1  
What error are you getting? –  j08691 May 29 '12 at 2:56
    
<b>Warning</b>: mysql_query() expects parameter 2 to be resource, string given in <b>C:\wamp\scaleUp\back\dbInit.php</b> on line <b>5</b><br /> –  valen May 29 '12 at 2:58
    
Connection string is good. $db = true –  valen May 29 '12 at 3:00
    
oh yes I just saw that, weird enough, that error usually happens when the connection or query fails. Try if (mysql_query(...))? –  Fabrício Matté May 29 '12 at 3:01
1  
Please stop using mysql_ functions and learn about the much more powerful (and not depreciated) mysqli and pdo classes –  Cole Johnson May 29 '12 at 3:10

3 Answers 3

up vote 1 down vote accepted

It seems like you are expecting $user to contain the user ID, but it will actually contain a resource containing all of the rows returned. In order to get the user ID, you will need something like this:

$result = mysql_query("SELECT ID FROM `users` WHERE `Name` = 'mvalentine'");

if (!$result) {
    die('Invalid query: ' . mysql_error());
} else {
    $row = mysql_fetch_assoc($result);
    $user = $row['ID']; 
}

Also, take note of the other comments and answers regarding style and the preference of mysqli and PDO for this type of thing.

share|improve this answer
    
Ahh wicked, I will. This is awesome stuff. Thanks a lot! –  valen May 29 '12 at 3:24
    
No problem. I'm glad that helped. –  jncraton May 29 '12 at 3:25

What is "$db" in your if statement?

To connect to your database you must use "mysql_connect" and "mysql_select_db".
For example,

<?php
    $connection = mysql_connect('localhost', 'root', 'password');
    $db = mysql_select_db('database_name');
    if($connection)
    {
        if($db)
        {
            //query here
        } else {
            die("Couldn't connect to mysql database ".mysql_error());
        }
    } else {
        die("Couldn't connect to mysql host ".mysql_error());
    }
?>

Also, it is good practice to surround table and column names with the prime character like so

mysql_query("SELECT * FROM `tablename` WHERE `column_name` = 'value'");
share|improve this answer
    
Please check edits, seems like this helped :) –  valen May 29 '12 at 3:15
    
Oh, ok, then rename my variable $db to $database or whatever you want. You just need to make sure you connect to a database is all. Best of luck! –  Kodlee Yin May 29 '12 at 3:17

I can't verify this right now, but I believe you may have a syntax error in your query:

mysql_query("SELECT ID FROM 'users' WHERE 'Name' = 'mvalentine'");

Column and table names, if you wish to quote them, should use the back tick:

$result = mysql_query("SELECT ID FROM `users` WHERE `Name` = 'mvalentine'");

Then change the rest of your code to actually fetch the user details:

$result = mysql_query("SELECT ID FROM `users` WHERE `Name` = 'mvalentine'") or die("Query failed");
$row = mysql_fetch_assoc($result);
$user = $row['ID']; 
share|improve this answer
    
This broke the code :( –  valen May 29 '12 at 3:20
    
Broke the code how? –  Ja͢ck May 29 '12 at 3:21
    
Ajax response --> <b>Warning</b>: json_encode() [<a href='function.json-encode'>function.json-encode</a>]: type is unsupported, encoded as null in <b>C:\wamp\scaleUp\back\boardSetCGI.php</b> on line <b>9</b><br /> –  valen May 29 '12 at 3:22
    
With the regular single quotes, the response is 'false' –  valen May 29 '12 at 3:23
    
@valen That's because $user is assigned to the result of mysql_query and that's a resource; you still have to mysql_fetch_assoc() on it like @jncraton described. –  Ja͢ck May 29 '12 at 3:27

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