51

I am sending an ajax request to a php file as shown here:

function checkDB(code, userid)
{

  $.ajax({
  type: "POST",
  url: "<?php bloginfo('template_url'); ?>/profile/check_code.php",
  data: 'code='+code+'userid='+userid,
  datatype: "html",
  success: function(result){

       if(result == 0)
        {
            $('#success').html( code + ' has been redeemed!');
            // alert('success');//testing purposes
        }
        else if(result == 2)
        {
            $('#err').html(  code + ' already exists and has already been redeemed....');
            //alert('fail');//testing purposes
        }else if(result == 1){
            $('#err').html(  code + ' redeem code doesnt exist');      
        }

        alert(result);      
      }
  })

}

This is sent calling the function on submit, like so:

<form method="post" class="sc_ajaxxx" id="sc_add_voucherx" name="sc_ajax"  
     onsubmit="checkDB(document.sc_ajax.sc_voucher_code.value, <?php echo $user_id ?>); return false;">
</form>

The problem is that the user id php variable is not getting sent to the check_code.php page by ajax. or at least I cant seem to echo the id back to the page.

Is this the correct way of passing multiple values to a server-side page? Without the userid passing over, it works fine just passing over the code.

Thanks guys :)

129

Here is how POST data should be formatted:

key1=value1&key2=value2&key3=value3

In your case (note the & as a separator):

'code=' + code + '&userid=' + userid

But jQuery does that for you if you specify your data as an object:

data: { code: code, userid: userid }
| improve this answer | |
  • 1
    Ok thanks. How would I specify it as an object? Would this be datatype: json? – JamesG Feb 17 '12 at 13:26
  • 1
    Nope, you don't need to change your dataType - that's a hint to jQuery how it should interpret your response. The data it sends is by default serialized as post data, e.g. code=17&userid=42. You just need to change your data string into what I wrote above and it will work. – Linus Thiel Feb 17 '12 at 13:31
  • Ok that makes sense... but why woiuld you want to set your dataType to JSON then? To read in JSON specifically? – JamesG Feb 17 '12 at 15:01
  • 1
    Normally you don't need to specify a dataType, jQuery will figure it out based on response headers etc. In cases where it can't, and you expect it to receive e.g. JSON back, it makes sense. See jQuery.ajax documentation. – Linus Thiel Feb 17 '12 at 15:05
  • I like the object method because it is easier to read and looks clean. – a coder Aug 8 '13 at 23:08
15

you should set your data like so :

data: 'code='+code+'&userid='+userid
| improve this answer | |
4

you can try this :

data: 'code='+code+'&userid='+userid,

instead of

data: 'code='+code+'userid='+userid,
| improve this answer | |
1

usually sending your data like this helps:

data: { code: code, userid: userid }

the most important thing to not forget is to verify if the name of the variables you are sending are the same in the server side

| improve this answer | |
1

The answer from Linus Gustav Larsson Thiel refers, I used the following &.ajax() that triggers when a button is clicked and it works great. I could pass day, month and year parameters.

$('#convertbtn').on('click',function(){
ageddajax = $("#agedd").val();
agedmmajax = $("#agemm").val();
ageyyyyajax = $("#ageyyyy").val();
    if(ageddajax > 0 && agemmajax > 0 && ageyyyyajax >0){
    $.ajax({
        type:'POST',
        url:'ajaxDataAge.php',
        data:'agedd_id='+ageddajax +'&agemm_id='+agemmajax +'&ageyyyy_id='+ageyyyyajax,
            success:function(html){
            $('#cydivage').html(html);
            }
        });
    }   
});
| improve this answer | |
0

Try this code... it is working for me ...

<script type='text/javascript'>
$(document).ready(function(){
  $(".star").click(function(){
   var rate_value1= $(this).index(".star")+1;
    $.ajax({
    type: "POST",
    dataType: "json",
    url:  "<?php echo(rootpath()) ?>/vote.php",

data: { product_id: '<?php echo($product_id_to_permalink) ?>' , rate_value: rate_value1 }

        });
      });
    });
</script>       
| improve this answer | |
0
 Try this code... 
    <script>
     function quote_ajax_table(){
       var doc_name = '<?php echo $test; ?>';
       var doc_no = '<?php echo $doc_no; ?>';

$.get('quote_ajax_table.php?doc_no='+doc_no+'&doc_name='+doc_name,function(data) {
   $('.dyna').html(data);
 });
}
</script>

//in html code 
  <div class="dyna"></div>
| improve this answer | |

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