130

What is the best way of checking whether or not a form has been submitted to determine whether I should pass the form's variables to my validation class?

First I thought maybe:

isset($_POST)

But that will always return true as a superglobal is defined everywhere. I don't want to have to iterate through each element of my form with:

if(isset($_POST['element1']) || isset($_POST['element2']) || isset(...etc

Whilst writing this question I thought of a much more basic solution, add a hidden field to act as a flag that I can check.

Is there a 'cleaner' way to do it than adding my own flag?

2
  • 4
    Well, you could make a submit button that has a specific nam, like submited and then use the php if(isset($_POST['submited'])) or a hidden input... – Max Allan Oct 10 '11 at 10:33
  • 2
    You should add a nounce to prevent replay attacks on your form. – hakre Oct 10 '11 at 10:35
208

For general check if there was a POST action use:

if (!empty($_POST))

EDIT: As stated in the comments, this method won't work for in some cases (e.g. with check boxes and button without a name). You really should use:

if ($_SERVER['REQUEST_METHOD'] == 'POST')
0
173

How about

if($_SERVER['REQUEST_METHOD'] == 'POST')
0
71

Actually, the submit button already performs this function.

Try in the FORM:

<form method="post">
<input type="submit" name="treasure" value="go!">
</form>

Then in the PHP handler:

if (isset($_POST['treasure'])){
echo "treasure will be set if the form has been submitted (to TRUE, I believe)";
}
4
  • 6
    This is the correct answer. Simply checking for $_POST isn't good enough because it could've been generated from a number of different places...not just from a form post. Thanks Tzshand. – Houston Nov 19 '13 at 12:39
  • Ideally now you should use if (null !== (filter_input(INPUT_POST, 'macaddress'))){ which gets you in the habit of using filter_input – depicus Feb 20 '15 at 9:46
  • 2
    POST can be done with Ajax, which won't have any submit button, so this is not a universal solution. – Muhammad bin Yusrat Jul 27 '15 at 5:54
  • That's true; it can also check any variable posted by AJAX. – Tzshand Jun 7 '17 at 22:00
36

Use

if(isset($_POST['submit'])) // name of your submit button
3
  • 2
    The simplest solution. All forms should have a submit button! – Anh Tran Mar 20 '17 at 3:26
  • 1
    But some forms may have multiple buttons. – Progrock Sep 20 '17 at 11:24
  • 2
    @rilwis sometimes forms are submitted by JavaScript and don't need/have a submit button – Waqas Malik Jun 5 '18 at 12:31
28

if ($_SERVER['REQUEST_METHOD'] == 'POST').

0
14

Try this

 <form action="" method="POST" id="formaddtask">
      Add Task: <input type="text"name="newtaskname" />
      <input type="submit" value="Submit"/>
 </form>

    //Check if the form is submitted
    if($_SERVER['REQUEST_METHOD'] == 'POST' && !empty($_POST['newtaskname'])){

    }
1
  • 2
    This method is the most recommended, since it seems to be recognized as "best practice" by the "coding academy". – Genesis Mar 3 '13 at 2:13
2

On a different note, it is also always a good practice to add a token to your form and verify it to check if the data was not sent from outside. Here are the steps:

  1. Generate a unique token (you can use hash) Ex:

    $token = hash (string $algo , string $data [, bool $raw_output = FALSE ] );
    
  2. Assign this token to a session variable. Ex:

    $_SESSION['form_token'] = $token;
    
  3. Add a hidden input to submit the token. Ex:

    input type="hidden" name="token" value="{$token}"
    
  4. then as part of your validation, check if the submitted token matches the session var.

    Ex: if ( $_POST['token'] === $_SESSION['form_token'] ) ....
    
1
  • this only works if the user doesn't inspect the element and sniff the value to run in their bots – c0d3x1337 Jan 7 at 12:50
0

I had the same problem - also make sure you add name="" in the input button. Well, that fix worked for me.

if($_SERVER['REQUEST_METHOD'] == 'POST' && !empty($_POST['add'])){
    echo "stuff is happening now";
}

<input type="submit" name="add" value="Submit">
-6

You could also use:

is_array($_POST)
2
  • 4
    is_array($_POST) always gives true (on my machine). According to stackoverflow.com/questions/5594020/php-check-if-post-is-array: $_POST is a superglobal array which is always defined , unless somewhere in your code you either unset or overwrite $_POST somehow, so it seems to be expected that this always returns true.. – GitaarLAB Jul 6 '14 at 21:49
  • is_array($_POST) is definitely not the way to check if the form was submitted. – Lukas Oct 12 '17 at 11:50

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