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I have a simple mysql_query() update command to update mysql.

When a user submits my form, it will jump to an update page to update the data. The problem is that there's supposed to be some data shown after the update, but it comes out blank.

My form

<form id="form1" method="POST" action="scheduleUpdate.php" >

  <select name=std1>
    <option>AA</option>
    <option>BB</option>
    <option>CC</option>
  </select>

  <select name=std2>
    <option>DD</option>
    <option>EE</option>
    <option>FF</option>
  </select>

.......//more drop down menu but the name is std3..std4..etc...
.......
</form>

scheduleUpdate.php

//$i is the value posted from my main app to tell me how many std we have

for($k=0;$k<$i;$k++){

    $std=$_POST['std'.$k];
//if i remove the updateQuery, the html will output.I know the query is the problem but i //couldn't fix it..
    $updateQuery=mysql_query("UPDATE board SET
                student='$std'
                WHERE badStudent='$std' or goodStudent='$std'",$connection);
        //no output below this line at all
        if($updateQuery){
        DIE('mysql Error:'+mysql_error());
        }

    }

// I have bunch of HTML here....but no output at all!!!!

MySQL will be updated after I hit submit, but it doesn't shown any HTML.

share|improve this question
    
NVM. I fix it now...my if($updateQuery) should be if(!updateQuery)........cant believe the little exclamation mark could mean a lot!.... –  FlyingCat May 27 '10 at 19:10
    
@Jerry You can post this as an answer and accept it, or delete the question (the link is just above these comments, under the tag list). Edit: Or accept one of the recently-submitted answers that said the same thing –  Michael Mrozek May 27 '10 at 19:11
    
Then either put that as an answer and accept it, or delete this question –  Shervin May 27 '10 at 19:11
    
Wow..you guys are quick. Since jeroen was the first person reply. you got my accepted answer! and +1 to all –  FlyingCat May 27 '10 at 19:15

6 Answers 6

up vote 3 down vote accepted

Your error handling is wrong; $updateQuery evaluates to true on success, so you kill your program on success instead of on an error.

share|improve this answer

Should it not be:

if(!$updateQuery)

?

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As others have said, it should probably be if(!$updateQuery){ rather than if($updateQuery){. I would have expected that you'd see the output "mysql Error:" though.

As an additional note, please read up on SQL injection and sanitising user input, as you appear to be writing vulnerable code.

share|improve this answer
    
The user only needs to select the value, they can't do inputs. Do I still need to worry about Sanitising data? –  FlyingCat May 27 '10 at 19:23
1  
Generally speaking, you should always sanitise anything that will go into a database query. Bear in mind that if I want, I can submit POST data to your page that I've generated myself, rather than using your page. That is to say, you can't rely on the POST data being in the "safe" format you designed. –  Hammerite May 27 '10 at 19:30

Shouldn't you die only if the query fails:

if(!$updateQuery){
    die('mysql Error:'+mysql_error());
}
share|improve this answer

According to your sample form, you should start k at 1 in the for loop, not 0.

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If You execute the code above you will get HTML output that saying "mysql Error:", also your counter variable k should start form one, since the first form element has name std1.

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