Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Possible Duplicate:
Jquery post, response in new window

i have a table html in a page called results.php that looks like GenID ENSMUSG00000098791 ENSMUSG00000023441 ENSMUSG00000047431

results.php have this function

<script>

function contenidoCelda() 
  {
  var table= $('#tabla_results');
  cells = $('td');
 for (var i=0,len=cells.length; i<len; i++)
   {
    cells[i].onclick = function()
      {
      var formData2 = new FormData(document.getElementById("formulario"));
      formData2.append("gen_id",(this.innerHTML));
      $.ajax({
          type: "POST",
      url: "test.php",
      data: formData2,
      cache: false,
      processData: false, 
      contentType: false, 
      success: function(data)
      {
        alert(data);       
            window.open('test.php', '_blank');

      }
    });

       }
     }
   }

</script>

i whant to use the data i send in the file test.php, not to return this to results.php, use in test.php, to generate the content dinamycally.

this is test.php

<?php
$data = $_POST['gen_id'];
system("mkdir $data");
echo "Hola";
echo $data;
echo '<xmp>';var_dump($data);echo '</xmp>';
?>

<html>
  <link href="css/ui-lightness/jquery-ui-1.9.1.custom.css" rel="stylesheet">
  <script src="js/jquery-1.8.2.js"></script>
  <script src="js/jquery-ui-1.9.1.custom.js"></script>
<body>
<form>

<p id = "testing"> Test page </p>

<?php if($data == "ENSMUSG00000047751") {echo "Good";} else {echo "Bad";}   ?>

</form>
</body>

so here in test.php, it must show Good, if i click that genid in the table but it show Bad, and returns Good to results.php

the test where i create a dir, whit the genid i click works fine

what i must do?

share|improve this question

marked as duplicate by jeroen, Jocelyn, stealthyninja, Alessandro Minoccheri, j0k Nov 23 '12 at 8:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Are you sure the directory was not already there? If the index is undefined at line 2 ($data = $_POST['gen_id'];) there is no way the directory can be created with that name at line 3. – jeroen Nov 22 '12 at 20:23
    
What exactly you mean by "but after that"? tried refreshing the parent page? – J A Nov 22 '12 at 20:26
    
the directory is not there, i delete after every test... – user1843376 Nov 22 '12 at 20:51
    
@user1843376 So my answer did solve the problem? – jeroen Nov 22 '12 at 21:53
    
@jeroen, the problem is not solved, the echo works as i wxpect, the in the test.php, i can't work with the $data variable – user1843376 Nov 22 '12 at 22:10
up vote 1 down vote accepted

In your $.ajax call, try setting:

$.ajax({
  type: "POST",
  url: "test.php",
  data: "testing123",
  cache: false,
  processData: false, 
  contentType: false, 
});

And see if dir test123 is created, and echoed back.

If not, then the problem is in these two lines, specifically with your definition of var formData2:

var formData2 = new FormData($('#formulario')[0]);
formData2.append("gen_id",(this.innerHTML));

Check for typing errors, such as the comma in place of the semi-colon:

var table = document.getElementById('tabla_results'),  <-- THIS IS A COMMA. TYPO?
cells = table.getElementsByTagName('td');

Also, you have a mix of jQuery and javascript. Why not standardize on jQuery? For example, the two lines above would be written like this in jQuery:

var table = $('#tabla_results');
cells = $('td');

Much less typing, yes?

Also, I'm sure you have, but are you sure you've included a link to the jQuery library? Such as:

<script src="http://code.jquery.com/jquery-1.8.2.js"></script>
share|improve this answer
    
the library is included... if i try with "testing123" i not get anything and i can't create the dir... but whit formData2 it show me the alert, and it creates the dir correctly ( and i'm not doing any other mkdir or something in other place, just here for test) – user1843376 Nov 22 '12 at 20:53

I think the problem is with the way you define formData2:

var formData2 = new FormData($('#formulario')[0]);

Resulting in formData2 not actually being FormData.

Try switching it to:

var formData2 = new FormData(document.getElementById("formulario"));

This should solve the data problem.

Edit: About the edit to your question, if you want to post the results to another page, there really is no need to use ajax. Just use javascript on form submit to add the additional field with the ID (if you cannot add it like a hidden field...) and use a normal form submit.

share|improve this answer
    
with this i get and error with formElement – user1843376 Nov 22 '12 at 20:51
    
@user1843376 You have to be more specific about the error, this does not tell me much. – jeroen Nov 22 '12 at 20:53
    
sorry, u edit ur comment? now i try whit var formData2 = new FormData(document.getElementById("formulario")); but i get the same, the dir is created with the cell content that i click, but i get nothing from the echo – user1843376 Nov 22 '12 at 21:02
    
@user1843376 See my edit. – jeroen Nov 23 '12 at 0:32

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