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I have been trying for hours to make this work but I am not getting anything back when doing the ajax call. I am new to Ajax and it could probably be something you will see but that I am unable to. I would appreciate you help. Here is my code.

HTML

 <script>
$("#submitlogin").click(function() {

      inputs = {
        "logInUsername" : $('input[name=logInUsername]').val(),
        "logInPassword" : $('input[name=logInPassword]').val()
      };
      // since this is a username and password combo you will probably want to use $.post
      $.ajax ({
        type: "POST",           
        url: "loggnow.php",
        data: inputs,
        success: function() {
          $("#login").html("You are now logged in!");
        }
      });
    });
</script>

loggnow.php

<?php
extract($_POST);

if($_POST)
{
   echo 'Yes the ajax posted';
}
?>
share|improve this question
    
do you get a Javascript error or PHP error when trying to manually access that page? also make sure you are giving the right path to the PHP file, what you have implies that both files are in the same directory –  Dany Khalife Nov 21 '11 at 3:49
    
Yes i am able to access the page through the url address, and yes they are in the same directory –  user710502 Nov 21 '11 at 4:08

3 Answers 3

up vote 2 down vote accepted

Try this :

$(document).ready(function(){
  $("#submitlogin").click(function() {
    inputs = {
        "logInUsername" : $('input[name=logInUsername]').val(),
        "logInPassword" : $('input[name=logInPassword]').val()
    };
    // since this is a username and password combo you will probably want to use $.post
    $.ajax ({
        type: "POST",           
        url: "loggnow.php",
        data: inputs,
        success: function() {
            $("#login").html("You are now logged in!");
        },
        error : function(jqXHR, textStatus, errorThrown){
            alert("error " + textStatus + ": " + errorThrown);
        }
    });
  });
});

This will give you an alert if an error occurs in AJAX with details

EDIT:

As Leo pointed it out, your code might be executing too fast, try the modified code above so that you make sure it runs after all the page has loaded

share|improve this answer
    
Thank you Dani, I tried this, and nothing came back.. the page does not change either but when i click the button it seems like it loads something for a second.. but then stays on the same page like nothing happened. –  user710502 Nov 21 '11 at 4:05
1  
i updated my answer after Leo's suggestion try it and let me know, altho Leo's approach is also good i encourage you to use $(document).ready instead because it's more clear to read then just $() especially if you are dealing with huge code –  Dany Khalife Nov 21 '11 at 4:14
    
Wow yeah this worked.. One last question what if i want to display the message "You are logged in from my .php page, can i do this?.. or how can i manipulate the sucess: function so that it gets some kind of response from the php –  user710502 Nov 21 '11 at 4:19
    
this should work: success: function(data_returned_from_server) {$("#login").html(data_returned_from_server);} –  Leo Nov 21 '11 at 4:26
1  
look here too - is the documentation for the $.post method (a shorthand for the $.ajax type=post you are using), it will make your code simpler :) –  Leo Nov 21 '11 at 4:34

Try to put your function inside

$(function(){
    //attach the button click here
});

this way your code will only run after the body loaded (so you are sure that you button exists) - look here

share|improve this answer

you just need a web server host looks like this:http://127.0.0.1:8084/xxx

share|improve this answer
    
I am using apache localhost/blah blah –  user710502 Nov 21 '11 at 4:05
    
Where did you get the port number from? –  todofixthis Nov 21 '11 at 5:07

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