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Okey so I got a really wierd problem that I can't understand. i got this piece of jquery code:

HTML CODE

<form>
  <input type="text" value="Search for a product" id="name" size="50">
  <input type="submit" id="submit" value="Search">
</form>

JAVASCRIPT CODE

$("#loader").hide();
$(document).ready(function() {      
  $('#submit').live('click', function(event){
  $("#loader").ajaxStart(function(){
    $(this).show();
  });
  $("#loader").ajaxStop(function(){
    $(this).hide();
  });
  $('.product').remove();
  var query = $("#name").val(); 
  var searchQuery = query.replace(/ /g,"+");     
  $.get("APIsearch.php", {keyword: searchQuery}, function(data){
    $("#content").html(data);
  });  
}); 
});

btw the #loader is just a loading gif that's shown during the ajax call.

Its simple enough, when I click the button with id "submit" it sends a string from a text field with the id "name" and puts a + where there are spaces between the words and then sends the string to the page APIsearch.php where I get some stuff back that's then loaded in to the "contetn" div. Now the problem is that when I add the "form" element around the "input" fields my ajaxt wont return anything and I need to have a form around since I want to start using .submit instead so I can use the enter button as a choise to submit the text. why does it only work when I remove the "form" elements like this?

<input type="text" value="Search for a product" id="name" size="50">
<input type="submit" id="submit" value="Search">
share|improve this question
    
live is deprecated, you should use on. also, your form tag needs some parameters. also, is your console throwing any errors or showing any php errors in its xml response? –  Rooster Aug 30 '12 at 16:12
    
calling the ajaxStart and ajaxStop functions each time a user clicks the submit button is unnecessary. You only need to set these once in your code, and they will be the defaults for any ajax calls on the page. –  dqhendricks Aug 30 '12 at 16:16
    
also, the $('#loader').hide(); line should be in your document ready function, since you need to make sure that the loader element is ready before you can hide it. –  dqhendricks Aug 30 '12 at 16:17

2 Answers 2

up vote 0 down vote accepted

When you submit a form, the whole page gets submitted and on the server, you will need to responsed back in html format. You will not be able to just update the div as you have mentioned.

However, the form element that you have shown does not have "action" specified. This indicates that you want to get the information from the server using Ajax. For Ajax response, you can program the 'enter' key to work:

$("#name").keyup(function(event){
    if(event.keyCode == 13){
        $("#submit").click();
    }
});
share|improve this answer

You need to add this line to the top of your #submit click method.

event.preventDefault();

otherwise your form will submit, refreshing the page, instead of performing your ajax call.

keep in mind however that hitting enter will not activate the click event of your submit button. to do this you would have to create your own key press handler to activate your click code.

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