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I need a little bit of your help with if statements in PHP , as I am new to it

First of all I have this query :

$sqlCmd = "SELECT user.name,user.level 
    FROM user.user 
    WHERE user.id = '".$_GET['char']."' 
    LIMIT 1";

and now I have this second query

visible $sqlUpdate = "UPDATE user.user 
    SET level='1' 
    WHERE id='".$_GET['char']."' 
    LIMIT 1";

What I want to do is something like this : if level>1 run the $sqlUpdate, else print an error .

Thanks! And Sorry if it's too noob question , I am trying to learn! ;)

share|improve this question
    
use condition in where –  NullPoiиteя Mar 21 '13 at 4:17
    
Show a little more of your code. –  Ja͢ck Mar 21 '13 at 4:20
    
Protect your code against SQL attacks. –  Lion Mar 21 '13 at 4:20
    
@Lion why killing the child –  Anonymous Mohit Mar 21 '13 at 7:06
    
@Photon : I really didn't get what you meant. –  Lion Mar 21 '13 at 9:22

6 Answers 6

visible $sqlUpdate = "UPDATE user.user SET level='1' WHERE id='".mysql_real_escape_string($_GET['char'])."' AND level >1 LIMIT 1";

your code is vulnerable to sql injection you need to escape all request properly


Warning

your code is vulnerable to sql injection you need to escape all get, post and request and the better approach will be using Prepared statement

Good Read

  1. How to prevent SQL injection in PHP?
  2. Are PDO prepared statements sufficient to prevent SQL injection?

Note

  1. The entire ext/mysql PHP extension, which provides all functions named with the prefix mysql_, is officially deprecated as of PHP v5.5.0 and will be removed in the future. So use either PDO or MySQLi

Good read

  1. The mysql extension is deprecated and will be removed in the future: use mysqli or PDO instead
  2. PDO Tutorial for MySQL Developers
  3. Pdo Tutorial For Beginners
share|improve this answer
    
Can you help me to fix that vuln? –  user1638487 Mar 21 '13 at 4:20
    
yes i did ... in query –  NullPoiиteя Mar 21 '13 at 4:21
    
@user1638487 Try to learn prepared statment using Mysqli OR PDO –  Yogesh Suthar Mar 21 '13 at 4:21

Try like this

visible $sqlUpdate = "UPDATE user.user 
                      SET level='1' 
                      WHERE id='".mysql_real_escape_string($_GET['char'])."' 
                      AND level >1 
                      LIMIT 1";

refer this links they may help you to learning http://sqlzoo.net/ ,http://beginner-sql-tutorial.com/sql.htm

share|improve this answer
1  
Any reasons to downvote it..??? –  Gautam3164 Mar 21 '13 at 4:23
    
I haven't downvote this. But I think you have given w3schools link for reference and because of that someone has downvote you. –  Yogesh Suthar Mar 21 '13 at 4:26
    
I dont know why but in my case I have started with w3schools...at begining I thought its better lateron you can go through sqlzoo.net –  Gautam3164 Mar 21 '13 at 4:27
    
Nowadays w3schools example and code are not proper,they contains lots of mistakes in it and because of that community don't want to give its link for reference. Anyways just remove its link. –  Yogesh Suthar Mar 21 '13 at 4:29
    
Ok now I think there is no reason to downvote for my CORRECT answer –  Gautam3164 Mar 21 '13 at 4:31
$sqlCmd = "SELECT user.name,user.level FROM user.user WHERE user.id = '".$_GET['char']."' AND level>1 LIMIT 1";
if(mysql_num_rows($mysql_con)===1){
//run second query
}else{echo'error:'}
share|improve this answer

Try this

$sqlCmd = "SELECT user.name,user.level 
FROM user.user 
WHERE user.id = '".$_GET['char']."' 
LIMIT 1";

$resource = mysql_query($sqlCmd);
$temp_arr = mysql_fetch_assoc($resource);
$level    = $temp_arr['level'];
if($level > 1)
{
    $sqlUpdate = "UPDATE user.user 
    SET level='1' 
    WHERE id='".mysql_real_escape_string($_GET['char'])."' 
    LIMIT 1";

    mysql_query($sqlUpdate);
 }
share|improve this answer

I think this should do it...

$result = mysql_query($sqlCmd);
if($row = mysql_fetch_object($result)) {
    if ($row->level > 1)
    {
      mysql_query($sqlUpdate);
      //Might want to add a check here if it was successful... 
      echo "Done";
    }
    else
      echo 'error!!!';

}
mysql_free_result($result);
share|improve this answer
    
That's what I was looking for , thanks! Now I am trying to add and "correct" msg to the code like "done" , I've tried to add an echo before "mysql_query($sqlUpdate);" , but does not work , any idea? –  user1638487 Mar 21 '13 at 4:38
    
did you add appropriate brasses to code? My if statement contains only one line, that why i didn't need them before –  Borik Mar 21 '13 at 4:44
    
What do you mean? –  user1638487 Mar 21 '13 at 4:50
    
I updated the code, let me know if that what you wanted to accomplish. –  Borik Mar 21 '13 at 4:52
    
Nice , thanks again , now i'd like to add another check in the if . I have tried this : if ($row->level > 249 & $row->power!=0) But does not work , can you help me again? –  user1638487 Mar 21 '13 at 5:10
    mysql_query("UPDATE user.user SET level='1' WHERE id='".$_GET['char']."' and level>1 LIMIT 1");
share|improve this answer
    
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  midhunhk Mar 21 '13 at 4:37
    
i'll keep that in mind. –  Suyash Mar 21 '13 at 4:38

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