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I am fiddling with jQuery.ajax() and php, and I need some pointers in order to make everything work:

Here is the php code:

if(!empty($_POST["fname"])){
        $firstName = $_POST["fname"];
        echo $firstName."<br />";
    }
    if(!empty($_POST["id"])){
        $age = $_POST["id"];
        echo $age;
    }

Here is the jQuery code:

jQuery("#ajaxForm").submit(function(event){
    event.preventDefault();

    var firstName = jQuery("#firstName").val();
    var age = jQuery("#age").val();

    // jQuery.ajax() - Perform an asynchronous HTTP (Ajax) request.
    jQuery.ajax({
        type: "POST",
        url: "http://localhost/profiling/index.php",
        data: {fname:firstName, id:age}
    }).done(function(result){
        alert("Your data has been submitted!" + firstName);
    });
    var result;
    console.log(result);

});

The values from jQuery exist, I get the alert, telling me the data has been submitted, firebug shows the Ajax post as working.

Why doesn't php gets my data and echo it?

share|improve this question
    
Have you tried console.log(result);? –  AlexP May 8 '13 at 23:18
    
'result' will hold the data returned by the php. –  chuckieDub May 8 '13 at 23:20
    
because you're not doing it. Recieve date from that php and append it in some div –  unkn0wn May 8 '13 at 23:22
    
I have added the console.log(result), update my question - result is undefined –  webmasters May 8 '13 at 23:23
    
It's undefined because you declared it again before you logged it. See my answer below. –  chuckieDub May 8 '13 at 23:29

3 Answers 3

up vote 0 down vote accepted

You have to use the success callback function to process the response from the POST to your Php page.

As stated in this thread

Your code could look similar to the following:

  /* Send the data using post and put the results in a div */
$.ajax({
  url: "test.php",
  type: "post",
  data: values,
  success: function(returnval){
      alert("success");
       $("#result").html('submitted successfully:' + returnval);
  },
  error:function(){
      alert("failure");
      $("#result").html('there is error while submit');
  }   
}); 

So, you have to somehow append the response from your Php to an HTML element like a DIV using jQuery

Hope this helps you

share|improve this answer
    
$_POST["fname"] - I should be able to echo this after the Ajax submit –  webmasters May 8 '13 at 23:25
1  
additionaly, add a datatype. Html or json. –  unkn0wn May 8 '13 at 23:29
    
@webmasters Yes, your Php is fine, you are able to echo the $_POST["fname"] variable, but then how does the HTML knows that it has to show that value? That is when jQuery comes to action by displaying the Php echoed value somewhere in your page. Does that makes any sense? –  juanreyesv May 8 '13 at 23:32
    
I see, that makes sense, cause I'm not refreshing the page... but how do I do that? –  webmasters May 8 '13 at 23:34
1  
@juanreyesv that script doesn't do anything with the returned data. –  chuckieDub May 8 '13 at 23:38

You need to get the returned data by the php and do something with it. See the added line of code below.

jQuery("#ajaxForm").submit(function(event){
event.preventDefault();

    var firstName = jQuery("#firstName").val();
    var age = jQuery("#age").val();

    // jQuery.ajax() - Perform an asynchronous HTTP (Ajax) request.
    jQuery.ajax({
        type: "POST",
        url: "http://localhost/profiling/index.php",
        data: {fname:firstName, id:age}
    }).done(function(result){
        alert("Your data has been submitted!" + firstName);
        alert("This is the data returned by the php script: " + result)
    });

});
share|improve this answer
    
Ty! Weird, the result - alerts me and gives me the whole content of the page. –  webmasters May 8 '13 at 23:28
    
I may not understand the ajax very well, shouldn't the echo $_POST["fname"] work after the ajax submit? –  webmasters May 8 '13 at 23:29
    
What else is contained in the php script? –  chuckieDub May 8 '13 at 23:30
    
I;m just learning now, that-s it - the whole php script –  webmasters May 8 '13 at 23:32
    
Yep, so, just write a very short script that returns just fname if that's all you want. –  chuckieDub May 8 '13 at 23:33

The correct way:

<?php
$change = array('key1' => $var1, 'key2' => $var2, 'key3' => $var3);
echo json_encode(change);
?>

Then the jquery script:

<script>
$.get("location.php", function(data){
var duce = jQuery.parseJSON(data);
var art1 = duce.key1;
var art2 = duce.key2;
var art3 = duce.key3;
});
</script>
share|improve this answer

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