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.

I have a form with which I am trying to display a form with checkboxes, and then insert into a database whether or not those checkboxes are checked. Then, each time the page is called, check the value and append information to the html form to appropriate display the checkbox as checked or not.

I have modified the below code example to make it short, and I am aware that I am assigning the checked value to 'value', which won't do anything.

The approach of

<input type="checkbox" name="notice"  value="checked" checked/>

to display a checkbox as checked, while not valid html, works in every browser, and is based on the example here. I would prefer to stick with this approach.

Now, I don't see what is wrong with my code.

The first steps should be to retrieve the values from the database, of which onyl one row will be retrieved, as article_no is a primary key. If nothing is retrieved, then the variables are simply assigned "", which results in the checkbox being unchecked.

As the value is checked, if it is selected, this should be inserted into the database, and will show as checked upon next viewing of the page.

Now, as it is, this code compeltely fails. firebug does not show anything being sent or received in the console, no erros are recorded either with php or mysql, nothing appears in the database despite the fields and such being correct, no mysql errors are reported...

What is the problem?

The code:

<?php

error_reporting(E_ALL);
if (isset($_GET["cmd"]))

  $cmd = $_GET["cmd"];

else
if (isset($_POST["cmd"]))

  $cmd = $_POST["cmd"];


  if (isset($_GET["pk"]))

  { $pk = $_GET["pk"];}
  if (isset($_POST["deleted"]))
  { $deleted = $_POST["deleted"];}
  if (isset($_POST["notice"]))
  { $notice = $_POST["notice"];}

$con = mysqli_connect("localhost","user","pass", "db");

if (!$con) {

   echo "Can't connect to MySQL Server. Errorcode: %s\n". mysqli_connect_error();

   exit;

}
$con->set_charset("utf8");
$getformdata = $con->query("select * from TEST where ARTICLE_NO = '$pk'");

$checkDeleted = "";
$checkNotice = "";


  while ($row = mysqli_fetch_assoc($getformdata))

  {

    $checkDeleted = $row['deleted'];

    $checkNotice = $row['notice'];

   } 
if($cmd=="submitinfo"){
$statusQuery = "INSERT INTO TEST VALUES (?, ?, ?)";

if ($statusInfo = $con->prepare($statusQuery)) {

    $statusInfo->bind_param("sss", $pk, $deleted, $notice);

   $statusInfo->execute();

   $statusInfo->close();
} else {

print_r($con->error);

}
}

echo "<form name=\"statusForm\" action=\"x.php\" method=\"post\" enctype=\"multipart/form-data\">

<h1>Editing information for auction: ".$pk."</h1>
Löschung Ebay:
<input type=\"checkbox\" name=\"deleted\" value=\"checked\" ".$checkDeleted." align=\"right\"/>
<br />
Abmahnung:
<input type=\"checkbox\" name=\"notice\"  value=\"checked\" ".$checkNotice."  align=\"left\"/>
<br />
<input type=\"hidden\" name=\"cmd\" value=\"submitinfo\" />
<input name=\"Submit\" type=\"submit\" value=\"submit\" />
</form>";

In the actual form/page, I have appropriate sanitization in place.

A big problem is that nothing is being inserted into the database and no errors are being returned at all!

share|improve this question
    
add input sanitization in the PHP too - client side sanitization can be turned off... –  Alnitak May 18 '09 at 11:03
1  
Your code is vulnerable to sql-injections. Use bind_param on $pk in the first select query. It's also vulnerable to xss-injections. Escape $pk with htmlspecialchars() when embedding it in html. –  troelskn May 18 '09 at 14:11

3 Answers 3

It's important to remember that unchecked checkbox does not contribute any values to a form when it is sent. When the deleted box is unchecked, there is no $_POST['deleted'] value set.

With that in mind, it looks like you don't actually set the value of $deleted if the checkbox is cleared. Use an idiom like this.

$deleted = isset($_POST["deleted"]) ? 1: 0;

Substitute the 1 and 0 with whatever values you want in your database table for the checked and unchecked states (in your case, "checked" and "")

share|improve this answer
    
If the checkbox is not checked, then the related value should surely remain as "", which would simply show it as not checked. I still don't understand why nothing is apparently being sent and I am not getting any errors. –  user1253538 May 18 '09 at 11:12
    
You don't get any submitted values for unchecked checkboxes, I have modified my answer to make that clearer. –  Paul Dixon May 18 '09 at 11:16
    
Thanks for your answer...testing this now. Trying with $deleted = isset($_POST["deleted"]) ? "checked": ""; I sill think it is odd I don't get any errors –  user1253538 May 18 '09 at 11:36
    
Hmm, nothing is going in the database still, and no errors..., I really don't understand this. –  user1253538 May 18 '09 at 11:43

Along the same lines as Paul Dixon's answer, I've done this at times:

<input type="hidden" name="notice" value="not checked" />
<input type="checkbox" name="notice" value="checked" checked="checked" />

If the user unchecks the checkbox, the hidden input's value gets sent instead. This way, $_POST['notice'] is always sent to your script.

share|improve this answer

I thought checkboxes should be done this way:

<input type="checkbox" name="notice1"  value="value1" checked="checked"/>
<input type="checkbox" name="notice2"  value="value2" checked="checked"/>
share|improve this answer
    
Yes, but then I can'T as easily do what I want to do. My appraoch works, as I stated, so it's fine. –  user1253538 May 18 '09 at 11:11
    
You're thinking of radio buttons, I think. If the user checks both checkboxes, only the value2 is sent (unless you turn name="notice" into name="notice[]"). –  ceejayoz May 18 '09 at 11:46
    
this was not an answer directly to the question, but more a tip on the html: the point a want to point at was, how to use the checked attribute on input fields. –  TheHippo May 18 '09 at 12:05

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.