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So I have a web app which uses all the hot keys from A to Z.

Each hot key is used for a tab. So for example:

I have 20 tabs:

#tab1, #tab2, #tab3, #tab4 etc. All tabs get a class of .tabs.

So for the hotkeys to work I made this:

if (e.keyCode == 65) {$('.tabs:not(#tab1)').hide();$("#tab1").fadeIn();}
if (e.keyCode == 66) {$('.tabs:not(#tab2)').hide();$("#tab2").fadeIn();}
if (e.keyCode == 67) {$('.tabs:not(#tab3)').hide();$("#tab3").fadeIn();}
if (e.keyCode == 68) {$('.tabs:not(#tab4)').hide();$("#tab4").fadeIn();}
if (e.keyCode == 69) {$('.tabs:not(#tab5)').hide();$("#tab5").fadeIn();}
if (e.keyCode == 70) {$('.tabs:not(#tab6)').hide();$("#tab6").fadeIn();}
if (e.keyCode == 71) {$('.tabs:not(#tab7)').hide();$("#tab7").fadeIn();}
//etc till keycode 81 and tab20.

So, is there a better optimizing way to make this so it will be written in less characters? Since on each line I'm using twice the the same ID.

Edit/Note: Sorry, the actual tab ID's are random names.

Thanks

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3 Answers

up vote 2 down vote accepted

Something like this perhaps:

if(e.keyCode >= 65 && e.keyCode <= 81) {
    var tab = e.keyCode - 65 + 1;
    $('.tabs:not(#tab' + tab + ')').hide();
    $('#tab' + tab).fadeIn();
}

I don't see how keycode 81 is supposed to be tab20 though, wouldn't that be tab17?


Update: If your tab ids can be anything at all then just throw them in an array:

var tab_ids = [ 'where', 'is', 'pancakes', 'house', ... ];
if(e.keyCode >= 65 && e.keyCode <= 81) {
    var tab = tab_ids[e.keyCode - 65];
    $('.tabs:not(#' + tab + ')').hide();
    $('#' + tab).fadeIn();
}

If you also have gaps in they keycodes then use an object instead of an array:

var tab_ids = { 65: 'where', 70: 'is', 72: 'pancakes', 73: 'house', ... };
var tab     = tab_ids[e.keyCode];
if(tab) {
    $('.tabs:not(#' + tab + ')').hide();
    $('#' + tab).fadeIn();
}
share|improve this answer
    
This limits the tabs to literally be tab1, tab2 etc ? Sorry I haven't declared that the tabs are not tab1, tab2 etc, Are just random names. I named them as such for the demo purpose. –  jQuerybeast Oct 23 '11 at 1:27
    
On ur edit: Well we haven't decided exactly the exact hotkey of the tabs. There are 3 more tabs left which we are thinking of which letters to use. –  jQuerybeast Oct 23 '11 at 1:31
    
@jQuerybeast: So your tabs can have any old ids at all? How is the HTML structured? –  mu is too short Oct 23 '11 at 1:31
    
Thanks for replying. Here is the actual working demo: jsfiddle.net/3FHBy Try letters a b c. For 20 tabs, that way too much coding, don't you think? I was just hoping there is a way of optimizing it. Thanks –  jQuerybeast Oct 23 '11 at 1:39
    
@jQuerybeast: I added a few more options that might suit your situation. –  mu is too short Oct 23 '11 at 1:44
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$('.tabs:not(#tab' + (e.keyCode - 64) + ')').hide();
$("#tab" + (e.keyCode - 64)).fadeIn();
share|improve this answer
    
This limits the tabs to literally be tab1, tab2 etc ? Sorry I haven't declared that the tabs are not tab1, tab2 etc, Are just random names. I named them as such for the demo purpose. –  jQuerybeast Oct 23 '11 at 1:29
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Just replace all these if statements with this code

$('.tabs:not(#tab'+(e.keyCode-64)+')').hide();
$("#tab"+(e.keyCode-64)).fadeIn();
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