1

What I want to do is to use a confirm box where if the user clicks OK, to delete a row from my SQL database. I have a js function I use to send the value "delete" to a php function on the same file like this:

<script>
    function myFunction() {
        if (confirm("Are you sure you want to delete?") == true) {
            document.getElementById("delete").name = "delete";
        }else{
            return false;
        }
    }
</script>

The button where the user will click to delete an image is this:

<button onclick="myFunction()">Delete Image</button>

I send the value to the PHP function like this:

<input type="hidden" name="" value="delete" id="delete">

This is my PHP function:

if(isset($_POST['delete'])){
    $img_path=$_POST['ipath'];
    $imgid=$_POST['imgid'];
    $link = mysqli_connect($host, $username, $password, $db);
    $delete = "DELETE FROM images_info
                WHERE Image_Id = $imgid";
    $result3 = mysqli_query($link, $delete);
    echo "Image Deleted : $imgid";
    mysqli_close($link);
}

What am I doing wrong? I believe it's gotta do with the javascript

8
  • to use $_POST in php you need form with method post Mar 30 '16 at 5:41
  • You need to use ajax for this.
    – Ohgodwhy
    Mar 30 '16 at 5:45
  • The html is inside <form action="newsearch.php" method="post">. However I opened and closed several <div>s inside this form. Will this make a difference? @DivyeshSavaliya Mar 30 '16 at 5:47
  • @Ohgodwhy, is there a simple way like this using ajax? I'm not familiar with ajax Mar 30 '16 at 5:48
  • no...its fine to have div inside form Mar 30 '16 at 5:49
6

in your html, input name attribute is empty,

<input type="hidden" name="" value="delete" id="delete">

it should be like

<input type="hidden" name="delete" value="delete" id="delete">

$_POST['delete'] will not be set until the name attribute is provided with the value 'delete'

5
  • the whole point of adding the javascript was to use a confirm box to ask the user to confirm if he/she wants to delete. If I wanted to delete straightaway by clicking a button, your method works Mar 30 '16 at 5:57
  • 2
    and in your php code u can use if(isset($_POST['delete'] && $_POST['delete'] == 'delete' )) , if you want to be sure that the data is not modified on client side before submitting the form Mar 30 '16 at 5:57
  • I think the problem here is with the javascript that send the value to the php. name="delete" is not what I'm looking for Mar 30 '16 at 6:01
  • You can use JavaScript to control the flow of data, but ultimately you do have to send your data from the client to the server. For _POST this means using the elements in your <form>. You can use JavaScript all you like to control the form input, but make your the final data gets to the form elements' name and value fields. Mar 30 '16 at 6:02
  • can u be more specific what is happening actually? i have tried to run this in fiddle the issue i m facing is, if i click yes, it sets the name = 'delete' and you can't undo that if u again click cancel in confirm dialog. so if once clicked yes the name will be set to delete and the php code will delete the image for sure jsfiddle.net/mommso8c Mar 30 '16 at 6:22
2

Use it like this. here is PhpFiddle

PHP CODE

  <?php
     if(isset($_POST['delete']))
    {
        // PERFORM YOUR DELETE QUERY HERE
        print_r($_POST);
     }
   ?>

JAVA SCRIPT

      <script>
      function myFunction() {
      if (confirm("Are you sure you want to delete?") == true) {
         document.getElementById("delete").name = "delete";

       }else{
       return false;
       }
     }
   </script>

HTML

     <form method="post" action="">
         <button onclick="myFunction()">Delete Image</button>
         <input type="hidden" name="" value="delete" id="delete">
     </form>
6
  • how form will submit? Mar 30 '16 at 5:50
  • By clicking on Submit Button. which i have added below delete button , see html code.
    – Sona
    Mar 30 '16 at 5:51
  • so user have to click two button? first, delete image then submit? if user directly click on submit how he get alert ? Mar 30 '16 at 5:52
  • you need to add another javascript on form submit but better to use ajax instead if you want this type of validation.
    – Sona
    Mar 30 '16 at 5:54
  • @Sona, can you give me an example how to use ajax for this? I'm not familiar with ajax Mar 30 '16 at 5:58
1

The variable $_POST is an associative array obtained from a form's <input> tags. The keys into $_POST are defined by the name attributes of an input tag, and the corresponding values in $_POST are defined by the value attribute in the same tag. Data in $_POST does not come from JavaScript unless you use an AJAX library like jQuery. If you want to control this data with pure JavaScript, you must directly set the attributes of your input tags.

You can keep the same JavaScript code you're using, just set the input tag's value attribute instead of its name, which should always be delete. Then in your PHP code, you can test the value of $_POST['delete'] to find out if the user really wanted to delete.

1

Doesn't seem like anyone wants to answer your question. If you'd like to do this with pure js, here ya go:

var url = 'YOUR URL POST DESTINATION HERE';
function myFunction(elem){
    var id = elem.target.id;
    var xmlHttp = new XMLHttpRequest();
    var params = 'delete=true&imgid=' + id;

    xmlHttp.open('POST', url, true);
    xmlHttp.setRequestHeader('Content-type', 'application/x-www-form-urlencoded');
    xmlHttp.send(params);

}

You will need to set imgid in your js programmatically. Execute myFunction() from your page like

<button onclick="myFunction(this)">Delete Image</button>

As a side note, it's a REALLY bad idea to let users post to a form and modify your DB. ANYONE can make a post request and delete your DB. But I decided to give you the benefit of the doubt and answer your question.

2
  • Thanks for the answer, and if it's not good to use POST to modify db data, what's the best way? Sorry I'm new Mar 31 '16 at 1:33
  • 2
    You need to be very careful when building SQL queries with user input, even if it has been sanitized. Your PHP is vulnerable to SQL injection attacks. If I sent 1 OR 1=1, it would delete your entire images_info table. I recommend this tutorial on using PHP Data Objects instead. Mar 31 '16 at 1:39
1

Sorry for all this mess guys, the actual problem was that I had another form inside the form. I didn't know that forms cannot contain forms inside them. Removed the other form, and it works

1

Do not use onclick="myFunction()" in the <input> tag. Instead, ensure:

<form method ="post" onsubmit="return confirm("Are you sure you want to delete?")">
    <button name = "delete">Delete Image</button>
</form>

  <?php
 if(isset($_POST['delete']))
{
     $img_path=$_POST['ipath'];
     $imgid=$_POST['imgid'];
     $link = mysqli_connect($host, $username, $password, $db);
     $delete = "DELETE FROM images_info WHERE Image_Id = $imgid";
     $result3 = mysqli_query($link, $delete);
     echo "Image Deleted : $imgid";
     mysqli_close($link);
 }
   ?>
1
  • 1
    Good job @Manav
    – rashedcs
    Jul 5 '19 at 12:35

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