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I've a jQuery code which show/hide some disabled fields, based on an user select option:

$('.fieldcontent').not('.info').hide();

$('#selector_cs').change(function() {
    $('.fieldcontent').customFadeOut(100);
    $('.' + $(this).val()).customFadeIn(900);
    $('input').prop('disabled',false);
    $('textarea').prop('disabled',false);
    $('select').prop('disabled',false);
});

});

The big headache is: if one or more fields are fading in, these fields doesn't pass my php validation, nor submitting the form.

If javascript is disabled on all browsers, the form works perfectly.

PHP validation is

if(!isset($_POST['products'])) {
$products[2] = clean_var($_POST['products']);
  }
 else {
  $error = 1;
   $products[3] = 'color:#FF0000;';
  }

for all fields

Is there any php /jquery solution (no ajax please, 'cause i won't make the whole form again, and don't know anything about ajax)?

Thanks in advance for help

EDIT: Just detected another error: If the jquery script fadein another section of the form, PHP doesn't validate it anymore. Why? Never had problems like this with php-jquery.

share|improve this question
    
Could you leave the fields enabled and just hide them instead? – Surreal Dreams Mar 20 '13 at 1:22
    
It's not possibile, because if the fields are enabled AND hidden by jQuery, the php validation wouldn't pass through. If the fields are disabled, the php validation can't see them. That's the reason why i've disabled the fields if the user doesn't select them. – Someone33 Mar 20 '13 at 3:36
    
make them type='hidden' instead? and when you want to show them make them type='text' (or something). Leave them enabled though. – Daan Timmer Mar 20 '13 at 16:36
    
@Someone33 Not sure I understand what you're asking. Are you saying it won't pass PHP validation because the items are fading in/out when the form is submitted? – Kyle Mar 20 '13 at 16:36
    
@kyle the php validation won't pass because if the fields are fading in, php will not see them any more (with if(!isset($_POST['message']))) ecc. I know, sound strange. Otherwise, with if(!empty($_POST['message']))) the validation woudn't pass. See in google isset vs empty. – Someone33 Mar 20 '13 at 17:27
up vote 0 down vote accepted

If you leave them enabled, but change the property type to hidden then PHP should see the fields when you submit them.

Update
How about the following scenario:

  • 5 fields shown
  • start-hiding two fields (A+B)
  • 'add' two type=hidden fields with the same name as A+B and copy their current value from A+B to `A+`B
  • PHP should see these two hidden fields instead of the fields that are currently fading out.
  • If the user did not submit while fading out, then when the fields have faded out remove the `A+`B fields and set the property of the two faded fields to hidden
  • Inverse this for showing them fields again.

Do take note that this is not a problem caused by PHP but caused by how/when a browser interprets a form field to be a valid form field to be send when submitting the form

share|improve this answer
    
If i would leave them enabled, but the fields are not shown by the jQuery script, PHP validation wouldn't pass. It's not a problem of seeing the fields or not. The problem is that the validation won't pass. If the fields are fading in, php doesn't recognize the fadeIn fields, 'cause for PHP the new fadedIn fields doesn't exist. – Someone33 Mar 20 '13 at 17:34
    
@Someone33 updated my answer – Daan Timmer Mar 20 '13 at 18:57
    
had tried it, but doesn't work. But maybe i didn't understand what you mean HERE you can see my code in action and download the files. 1000 thanks for help, really appreciate it. – Someone33 Mar 20 '13 at 20:38
    
Just detect that if i'll use hidden fields, PHP would send these hidden fields, which woundn't be pretty to see values like "some1", "some2" ecc. in the mail. – Someone33 Mar 22 '13 at 16:05

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