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I am using the following keyup event handler .

<script type="text/javascript">
  $('.someClass').on('keyup', function(e){
    console.log($(this).val());
  });
</script>

When writing the keyup event , and typing "qwe".
actual result : "qwe" desired result :
"q"
"qw"
"qwe"

i simplified it here , but i also tried with closure , what is the right way?

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4  
I'm getting the desired result...jsfiddle.net/3xAga –  0x499602D2 Jan 27 '13 at 16:32
    
Closures make no sense here. Try to input letter by letter with ~200ms pause. –  VisioN Jan 27 '13 at 16:32
    
Maybe you are typing to quickly. –  Felix Kling Jan 27 '13 at 16:34
    
thats exacly my problem. i am writing the 3 letters really fast... –  IdanHen Jan 27 '13 at 16:35
    
So why is this a problem? Why do you need to get q, qw and qwe separately? You can always deduce the previous value(s) from the current value (well, to some degree). –  Felix Kling Jan 27 '13 at 16:36
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2 Answers

up vote 1 down vote accepted

I found a tricky (ugly?) solution that works even if you type quickly:

var prevVal = '';
$('.someClass').on('keypress', function (e) {
    prevVal += String.fromCharCode(e.which);
    console.log(prevVal);
}).on('keyup', function() { prevVal = $(this).val() });

See here: http://jsfiddle.net/FZHZJ/1/

Note it doesn't print on modifier keyup events (ie. backspace, shift, arrows) - if you want that also then reply and I'll try to fix it.

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thanks iftah ! this is working ! –  IdanHen Jan 27 '13 at 16:51
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This is the sulotion i used in the end.
its pushing the value to array when keypressed, and pop it on keyup.
( the stack is used with reverse .. )

var stackValues = new Array();
$('.someClass').on('keypress', function (e) {
   prevVal = $(this).val();
   prevVal += String.fromCharCode(e.which);
   stackValues.push(prevVal);
}).on('keyup', function() { 
   var value = (stackValues.reverse()).pop();
   stackValues.reverse();
   console.log('value:', value);
});
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