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I'm new to javascript (and jQuery) so bear with me.

I want the user to be able to type in a number on a textbox and each time the user enters another value (keypress, keydown, keyup) the code executes and calculates the new value.

Here's a jsFiddle

My problem is that the textbox won't let me enter more than one value. How do I keep entering more values?

jQuery (1.9.1)

$(document).ready(function() {
    $('.conv').keyup(function() {
      var valx = parseFloat($(this).attr('data-val'));
      var classes = parseInt($('.conv').length);

      for (var i=1;classes;i++) {
          var x = 'a' + i;
          //alert(x);
          var theval = document.getElementById(x);
            var z = parseFloat($('#' + x).attr('data-val'));
            //alert(z);
            $('#' + x).val(z / valx);
        if (i == classes) {
        break;
        }
    }
    });
 });

Again...here's a jsFiddle if you want to edit

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1 Answer 1

up vote 0 down vote accepted

You seem to be overwriting even the value of the textbox that generated the event..

Replace

$('#' + x).val(z / valx);

with

$('#' + x).not(this).val(z / valx);

EDIT

The reason is you are always reading the value from

var valx = parseFloat($(this).attr('data-val'));

instead of

var valx = parseFloat($(this).val());

Check Fiddle

share|improve this answer
    
Thanks! that helps. How do I make it so that the code will redo the calculations when I keep typing in digits? Example: type "1", the code will calculate. Then add a "0" and the code does not register that the new number is "10". –  Sanya Jun 10 '13 at 19:17
    
in that case you may want change() instead of keyup() –  pandavenger Jun 10 '13 at 19:19
    
@Sanya .Keyup is perfectly fine. Check edit –  Sushanth -- Jun 10 '13 at 19:21
    
Awesome! thanks you guys. –  Sanya Jun 10 '13 at 19:23
    
.change() only seems to work when I focus away from the textbox –  Sanya Jun 10 '13 at 19:25

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