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My question is when user click on checkbox, then user is activated. this code is working fine. But when user again click on uncheckbox, then again user de-activated. How to do that? here is my working code.

Activate user when user click on checkbox

if($_GET['doAction'] == 'Activate') {
    if(!empty($_GET['q'])) {
        $userid = $_GET['q'];
        $conn = db_connection();
        $query = "UPDATE user SET activate = '1' WHERE userid = '".$userid."' ";
        $result=$conn->query($query);
    }
}

here is my checkbox

<input type="checkbox" name="app" onchange="callUser(this.value,doAction.value);" value="<?php echo $userid;?>" <?php if($row['approved'] == '1'){ echo "checked=\"true\""; }?>/>
<input type="hidden" name="doAction" id="doAction" value="Approved" />

thanks you so much. :-) EDIT-> Here is calluser() Function

<script type="text/javascript">
function callUser(str,action,third)
{
 var xmlhttp;    
if (str=="")
{
document.getElementById("txtHint").innerHTML="";
return;
}
if (window.XMLHttpRequest)
  {// code for IE7+, Firefox, Chrome, Opera, Safari 
  xmlhttp=new XMLHttpRequest();
}
else
 {// code for IE6, IE5
 xmlhttp=new ActiveXObject("Microsoft.XMLHTTP");
 }
xmlhttp.onreadystatechange=function()
 {
if (xmlhttp.readyState==4 && xmlhttp.status==200)
 {
 document.getElementById("txtHint").innerHTML=xmlhttp.responseText;

}
}
xmlhttp.open("GET","adminPanel.php?    q="+str+"&doAction="+action+"&app="+third,true);
    xmlhttp.send();
}
 </script>

Here is screenshot http://i.stack.imgur.com/MpQfC.png

share|improve this question
4  
You are calling the JavaScript function callUser. Can you post this function? –  Michiel Pater Feb 24 '11 at 9:22
    
There is no Activate word in html at all. Did you miss something? –  artyom.stv Feb 24 '11 at 9:24
    
A checkbox has a value of on when checked (in the ? part of the URL), and is missing when not checked. –  pimvdb Feb 24 '11 at 9:33

4 Answers 4

up vote 4 down vote accepted

You should send the state of the checkbox rather than the hidden field value.

onchange="callUser(<?php echo $userid;?>,this.value);"

then on the PHP side you can do a

$userid = $_GET['q'];
if(!empty($_GET['doAction']) {
   ... activate ...
}
else { ... deactivate ... }

Also, please be aware that your code sample and my anwser are both EXTREMELY insecure. You are wide open to SQL injection attacks and potential permission problems.

EDIT : fix not sending user ID.

share|improve this answer
    
I will fix later SQL injection. thanks anyway –  no_freedom Feb 24 '11 at 9:55
    
A common misconception to security is that it is an add-on or a patch to be done later. Secure systems must designed to be secure from the start for best results. It is also more work to add all later than to do as you go along, much like code comments. –  ianaré Feb 24 '11 at 10:03
    
thanks for suggestion. and your code is working. thanks again. :-) –  no_freedom Feb 24 '11 at 10:33
    
please again help, deactivate part is not working. –  no_freedom Feb 25 '11 at 7:21

Update: Seeing as how the just revealed Javascript method kind of ruins the default form sending abilities of a web page, please ignore this answer.

An unchecked checkbox does not get passed back to the server when the form is submitted. So, in this case:

if($_GET['doAction'] == 'Activate') {
    if(!empty($_GET['q'])) {
        $userid = $_GET['q'];
        $conn = db_connection();

        if (!empty($_GET['app'])) {
            $query = "UPDATE user SET activate = '1' WHERE userid = '".$userid."' ";
        }
        else {
            $query = "UPDATE user SET activate = '0' WHERE userid = '".$userid."' ";
        }
        $result=$conn->query($query);
    }
}

Hope this helps

Also, you would do well to be using parameters and binding the variables to the SQL rather than concatenating strings. This will go a long way to preventing SQL injection attacks.

share|improve this answer
    
or you could use mysql_real_secape_string($userid) just as good but a damn site less work –  Barkermn01 Feb 24 '11 at 9:44
    
@Barkermn01 thanks for tips. –  no_freedom Feb 24 '11 at 9:49
    
@barkermn01 else { $query = "UPDATE user SET activate = '0' WHERE userid = '".$userid."' "; } This statement Will never execute, because I'm retrieving value of app from the database. –  no_freedom Feb 24 '11 at 9:59
    
app should only be sent when it is active have you got some javascript activating the checkbox every time? –  Barkermn01 Feb 24 '11 at 10:07

Your need if user uncheck checkbox than doAction='Deactivate'?
Post here source code of callUser function

share|improve this answer

one other thing is you dont use value to set if its checked or not,

checked="checked" means enabled in the Input Tag

Then who ever said it is not sent is correct your best way of detecting them is using a isset($_REQUEST['checkBx'])

E.G

if(isset($_REQUEST['checkbx'])){
  // code for they are enabled
}else{
  // code for they are disabled
}
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