Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Hello I need to select all users with privileges, 1, 2 and 3 from a table named "USERS". After that, I will use their ID to do a new select at another table, named "Status".

<?php
include_once("include/connection.php");
$sql = 'select * from USERS where Privileges != "4"';

$rs = mysqli_query($connect, $sql) or die ("error");
$op = mysqli_num_rows($rs);

while($row = mysqli_fetch_array($rs))
{
    $id = $row['ID'];
    $name = $row['Name'];
    $priv = $row['Privileges'];

    $sql = 'select * from Status where ID="$id"';
    $result = mysqli_query($connect, $sql) or die ("database error");
    $gmon = mysqli_num_rows($result);

    $login = $row['Login'];

    switch($login)
    {
        case "ONLINE":
            $login = "<font color=\"#84FB84\"><strong>".$name."</strong></font>";
            break;
        case "OFFLINE":
            $login = "<font color=\"#46AAEB\"><strong>".$name."</strong></font>";
            break;
    }
    $online_adms .= "<td>$login</td>";
}
?>
<?php echo $online_adms; ?>

UPDATE I can't get the output for "$login" variable... If I try to output "$name" or "$id", it works fine...but I need to output the "$login". I guess I can use some INNER JOin here...

Any clues?

Thanks.

SOLUTION

$sql = 'SELECT c.Name, c.ID, c.Privileges, d.Login FROM USERS c 
        INNER JOIN Status d 
        ON c.ID = d.ID
        where Privileges != 4';
share|improve this question
    
Isn't working? Can you reduce the scope of that description a bit? –  RedFilter Sep 10 '12 at 16:29
    
What is the error, why isn't the code working? –  rationalboss Sep 10 '12 at 16:30
    
"RedFilter" and "rationalboss" - I depend on 2 tables: Users and Status (respectively). "Users" table, will return me all users under the searched privileges. After filter only desired users, I'll search only online users between them. –  Darkeden Sep 10 '12 at 16:36
1  
I don't see where you use the value stored in $result (containing select * from status). Did you mean to? –  Anssssss Sep 10 '12 at 16:38
    
I didn't get you Ansss... –  Darkeden Sep 10 '12 at 16:44

3 Answers 3

you could select all the required fields with a join

SELECT `ID`,`Name`,`Privileges`,`Login` 
 FROM `USERS` 
 INNER JOIN `Status`
 ON `USERS`.`ID` = `Status`.`ID`
 WHERE Privileges != 4

then remove your second query

share|improve this answer

If you are just getting PHP syntax errors, you forgot to close the while loop. Here is the corrected code:

$sql = 'select * from USERS where Privileges != "4"';

$rs = mysqli_query($connect, $sql) or die ("error");
$op = mysqli_num_rows($rs);

while($row = mysqli_fetch_array($rs))
{
    $id = $row['ID'];
    $name = $row['Name'];
    $priv = $row['Privileges'];

    $sql = 'select * from Status where ID="$id"';
    $result = mysqli_query($connect, $sql) or die ("database error");
    $gmon = mysqli_num_rows($result);

    $login = $row['Login'];

    switch($login)
    {
        case "ONLINE":
            $login = "<font color=\"#84FB84\"><strong>".$name."</strong></font>";
            break;
        case "OFFLINE":
            $login = "<font color=\"#46AAEB\"><strong>".$name."</strong></font>";
            break;
        default:
            $login = 'OOPS! The value of $login is '.$login.' that is why nothing is being printed. :(';
    }
}

Also, you might want to improve your line:

$result = mysqli_query($connect, $sql) or die ("database error");

by:

$result = mysqli_query($connect, $sql) or die ("database error: ".mysql_error().'<br />query: '.$sql);
share|improve this answer
    
I have posted full code. –  Darkeden Sep 10 '12 at 16:40
    
okay, what is the error you are getting? $connect is null in your full code. –  rationalboss Sep 10 '12 at 16:42
    
$connect is included....I will fix the code, wait a second –  Darkeden Sep 10 '12 at 16:44
    
okay, this is very important: what is the error you are getting? –  rationalboss Sep 10 '12 at 16:46
    
There is no error. I can output $name, $id...I just can't output the $login. –  Darkeden Sep 10 '12 at 16:49

Basically, it appears that the Login column is supposed to be in the Status table, but it wasn't being used. Try something like this:

<?php
include_once("include/connection.php");
$sql  = 'SELECT USERS.*, STATUS.* FROM USERS INNER JOIN STATUS ';
$sql .= 'ON USERS.ID=STATUS.ID WHERE USERS.Privileges != "4"';

$rs = mysqli_query($connect, $sql) or die ("error");
$op = mysqli_num_rows($rs);

while($row = mysqli_fetch_array($rs))
{
    $id = $row['ID'];
    $name = $row['Name'];
    $priv = $row['Privileges'];
    $login = "<font color=\"#46AAEB\"><strong>".$name."</strong></font>";
    $loginStatus = $row['Login'];

    switch($loginStatus)
    {
        case "ONLINE":
            $login = "<font color=\"#84FB84\"><strong>".$name."</strong></font>";
            break;
        case "OFFLINE":
            $login = "<font color=\"#46AAEB\"><strong>".$name."</strong></font>";
            break;
        default:
            $login = "<font color=\"#999999\"><strong>".$name."</strong></font>";
            break;
    }
    $online_adms .= "<td>$login</td>";
}
?>
<?php echo $online_adms; ?>
share|improve this answer
    
It does displays the users now...but not dinamically. It should display which is online with GREEN color and RED which is offline. –  Darkeden Sep 10 '12 at 17:20
    
Ok; out of curiousity, what is the SQL column type of "Login"? I'm assuming in this case that it is either an enum or a String. –  ChrisForrence Sep 10 '12 at 17:22
    
Login column type = ENUM –  Darkeden Sep 10 '12 at 17:35
    
Alright, and the two possible values are "ONLINE" and "OFFLINE", and not "online" and "offline"? Also, I did update my query to just use an INNER JOIN –  ChrisForrence Sep 10 '12 at 17:38
    
Also added a default login status (shows gray if neither ONLINE nor OFFLINE) –  ChrisForrence Sep 10 '12 at 17:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.