12

I am stuck in my code, I need to send data from the form to the check.php page and then process it.

This is my code:

The AJAX part:

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.11.1/jquery.min.js"></script>
<script>
$(document).ready(function(){
var form=$("#myForm");
$("#smt").click(function(){
$.ajax({
        type:"POST",
        url:form.attr("action"),
        data:form.serialize(),
        success: function(response){
            console.log(response);  
        }
    });
});
});
</script>

The form:

<form action="check.php" method="post" name="myForm" id="myForm">
<input type="text" name="user" id="user" />
<input type="text" name="pass" id="pass" />
<input type="button" name="smt" value="Submit" id="smt" />
</form>
<div id="err"></div>

the php part:

$user=$_POST['user'];
$pass=$_POST['pass'];

if($user=="tony")
{
    echo "HI ".$user;   
}
else
{
    echo "I dont know you.";    
}
  • 1
    Whats the problem then? – Rajiv Pingale Jun 3 '14 at 5:34
  • when i an clicking the button, nothing happens... – gomzy Jun 3 '14 at 5:35
  • 1
    comment the ajax call and add a simple alert message in that function and tell the result of it. If the form is generated by other code or dynamically added use .on() or .live() depending on the jquery version. – SSS Jun 3 '14 at 5:46
  • use chrome's inspect elements after clicking the button. is it show some javascript errors? – AmanS Jun 3 '14 at 5:48
  • 2
    Your code is correct.It goes to check.php page and displas message in console. If you want replace console.log(response); with alert(response). – Gowri Jun 3 '14 at 5:48
11

Try this

 $(document).ready(function(){
    var form=$("#myForm");
    $("#smt").click(function(){
    $.ajax({
            type:"POST",
            url:form.attr("action"),
            data:$("#myForm input").serialize(),//only input
            success: function(response){
                console.log(response);  
            }
        });
    });
    });
  • Why would this work if the above is not working? – Chava G Jul 14 '17 at 2:00
7

try it , but first be sure what is you response console.log(response) on ajax success from server

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.11.1/jquery.min.js"></script>
<script>
$(document).ready(function(){
var form=$("#myForm");
$("#smt").click(function(){
$.ajax({
        type:"POST",
        url:form.attr("action"),
        data:form.serialize(),

        success: function(response){
        if(response === 1){
            //load chech.php file  
        }  else {
            //show error
        }
        }
    });
});
});

4

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.11.1/jquery.min.js"></script>
<script>
$(document).ready(function(){
var form=$("#myForm");
$("#smt").click(function(){
$.ajax({
        type:"POST",
        url:form.attr("action"),
        data:form.serialize(),
        success: function(response){
            console.log(response);  
        }
    });
});
});
</script>

This is perfect code , there is no problem.. You have to check that in php script.

  • 1
    What else is needed in order to stay on the same page after the form is submitted? – Aaron Liu Nov 12 '15 at 17:25
  • prevent reload of page on submit if form is used – L Ananta Prasad Oct 25 '16 at 10:43
1

I just had the same problem: You have to unserialize the data on the php side.

Add to the beginning of your php file (Attention this short version would replace all other post variables):

parse_str($_POST["data"], $_POST);
0

Change your code as follows -

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.11.1/jquery.min.js"></script>
<script>
$(document).ready(function(){
var form=$("#myForm");
$("#smt").click(function(){
$.ajax({
        type:"POST",
        url:form.attr("action"),
        data:form.serialize(),

        success: function(response){
        if(response == 1){
              $("#err").html("Hi Tony");//updated
        }  else {
            $("#err").html("I dont know you.");//updated
        }
        }
    });
});
});
</script>

PHP -

<?php
$user=$_POST['user'];
$pass=$_POST['pass'];

if($user=="tony")
{
    echo 1;   
}
else
{
    echo 0;    
}
?>
  • 1
    yeah its working this way but for a second thoughts lets say we dont want to alert it, we want to show the result in the div "err", with this code "success: function(response){ $("#err").load("check.php"); }" but when doing this all the time its going into the else case and shows "i dont know you", what am i doing wrong? – gomzy Jun 4 '14 at 4:48
  • 1
    I have updated the answer.Go through it. – Chetan Gawai Jun 4 '14 at 10:57
0

Your problem is in your php file. When you use jquery serialize() method you are sending a string, so you can not treat it like an array. Make a var_dump($_post) and you will see what I am talking about.

  • 1
    Do you have a solution ? Otherwise this should be a comment. – DatRid Nov 14 '14 at 14:41
0
Try this its working..

    <script>
      $(function () {
      $('form').on('submit', function (e) {

        e.preventDefault();
        $.ajax({
            type: 'post',
            url: '<?php echo base_url();?>student_ajax/insert',
            data: $('form').serialize(),
            success: function (response) {
            alert('form was submitted');
            }
            error:function()
            {
            alert('fail');
            }
      });
      });
          });
    </script>

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