135

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, 2011 at 10:33
  • 2
    You should add a nounce to prevent replay attacks on your form.
    – hakre
    Oct 10, 2011 at 10:35

9 Answers 9

223

For general check if there was a POST action use:

if ($_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
177

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
  • 7
    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, 2013 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, 2015 at 9:46
  • 3
    POST can be done with Ajax, which won't have any submit button, so this is not a universal solution. Jul 27, 2015 at 5:54
  • That's true; it can also check any variable posted by AJAX.
    – Tzshand
    Jun 7, 2017 at 22:00
38

Use

if(isset($_POST['submit'])) // name of your submit button
3
  • 3
    The simplest solution. All forms should have a submit button!
    – Anh Tran
    Mar 20, 2017 at 3:26
  • 1
    But some forms may have multiple buttons.
    – Progrock
    Sep 20, 2017 at 11:24
  • 4
    @rilwis sometimes forms are submitted by JavaScript and don't need/have a submit button Jun 5, 2018 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, 2013 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, 2021 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 $_POST somehow, so it seems to be expected that this always returns true..
    – GitaarLAB
    Jul 6, 2014 at 21:49
  • is_array($_POST) is definitely not the way to check if the form was submitted.
    – Lukas
    Oct 12, 2017 at 11:50

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.