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I have a form which is submitted using a link. However, when I try to use isset, it doesn't seem to work,

<form name="xForm" action="<?php echo htmlentities($_SERVER['PHP_SELF']); ?>" method="post">
   <input type="text" name="aff" class="make" value="" />
   <a href="#" title="" class="pay-button" style="margin-top:5px;" name="submit" onclick="document.xForm.submit()">SUBMIT</a>
</form>


if(isset($_POST['submit']))
       {
          $aff = $_POST['aff'];
       }

Any help will be appreciated. Thanks

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<a> is not a form element. I suggest change the <a> to a <input type="submit" name="submit"> or <input type="image" name="submit"> –  Leysam Rosario Nov 23 '11 at 13:44
    
As stated in the answer from Shadow Wizard, using name="submit" anywhere is bound to cause trouble. It's not clear what you want to do with it, but you should use another name. –  Viruzzo Nov 23 '11 at 13:48

3 Answers 3

up vote 1 down vote accepted

You don't have any form element named "submit".

Either add such as hidden input, or check the text box name:

if(isset($_POST['aff']))

The anchor name is not relevant.

The code for hidden input is:

<input type="hidden" name="submit" value="true" />

Adding it to the form, you will get the value "true" when the form will be submitted.

The above (adding hidden input named submit) is not good idea as it will cause the code ocument.xForm.submit() to fail - if you choose hidden input just give it other name.

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anchor tag is not form element so its values will not be available in $_POST variable. Removing the isset will work

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$_POST['submit'] is not defined because the value of <a> is not passed by forms (doesn't matter if you put a name attribute on it).

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