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Okay so I think tonight brain is not working, as second question of the hour! I have the following code:

function merge_ts(){
    var arr = $.unique(css_ts('bookings'));
    var dai = $.unique(css_ts('diary'));

    $.each(arr, function(index, bid) { 
        $("input[type='hidden'][class^='bookings'][value=" + bid + "]").parent('div').css({'background-color':'#00008b','border-color':'#ffffff #00008b #ffffff #00008b','border-width':'1px 1px 0px 1px'});
        $("input[type='hidden'][class^='bookings'][value=" + bid + "]:first").parent('div').css({'border-color':'#ffffff #00008b #ffffff #ffffff','border-width':'1px 1px 0px 1px'});
        $("input[type='hidden'][class^='bookings'][value=" + bid + "]:last").parent('div').css({'border-color':'#ffffff #ffffff #ffffff #00008b','border-width':'1px 1px 0px 1px'});
    });

    $.each(dai, function(index, bid) { 
        $("input[type='hidden'][class^='diary'][value=" + bid + "]").parent('div').css({'background-color':'#950404','border-color':'#ffffff #950404 #ffffff #95040','border-width':'1px 1px 0px 1px'});
        $("input[type='hidden'][class^='diary'][value=" + bid + "]:first").parent('div').css({'border-color':'#ffffff #950404 #ffffff #ffffff','border-width':'1px 1px 0px 1px'});
        $("input[type='hidden'][class^='diary'][value=" + bid + "]:last").parent('div').css({'border-color':'#ffffff #ffffff #ffffff #950404','border-width':'1px 1px 0px 1px'});
    });
}

The code finds inputs that match a class and then applies styling to the all those elements, then applies styling to the first and last elements in the group.

The code currently does this for two classes, I have eight classes each with a different color, my question is to find a way of doing this without writing out the code eight times.

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1  
I say, don't hardcode styles in to javascript! Put them in a separate CSS class and then just add/remove the classes with jquery, code will look much much cleaner. –  Mārtiņš Briedis Mar 25 '11 at 22:54
    
I normally do use seperate CSS class, but I have eight different classes, each with three options, so would require 24 css classes, is that cleaner? –  bland_dan Mar 25 '11 at 22:57
    
Think of the future when you will have to maintain the code. I don't think that there are any good excuses to mix up logic - style with javascript, everything has it's own place. –  Mārtiņš Briedis Mar 25 '11 at 23:01
    
Fair point. Thanks –  bland_dan Mar 25 '11 at 23:01

3 Answers 3

up vote 0 down vote accepted

You should bite the bullet and use classes. More lines doesn't mean the solution is worse if those lines can later be read and understood in context. It's a good idea to write your code assuming someone else (or you in the distant future) will have to read it. And something like this:

.major-head {
  background-color: #00008b;
  border-color: #ffffff #00008b #ffffff #00008b;
  border-width: 1px 1px 0px 1px;
}

...will make a lot more sense than this:

{'background-color':'#00008b','border-color':'#ffffff #00008b #ffffff #00008b','border-width':'1px 1px 0px 1px'}

You can also consolidate your selectors a bit. Something like this is a bit clearer (and nominally faster):

$.each(arr, function(index, bid) { 
  var $obj = $("input[type='hidden'][class^='bookings'][value=" + bid + "]"); 
  $obj.parent('div').addClass('major-head');
  $obj.filter(':first').parent('div').addClass('something-else');
  $obj.filter(':last').parent('div').addClass('another-thing');
}

If the css writing becomes really tedious, you might look into something like Sass.

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Put the code that is repeated in a function, and use parameter for the values that differ:

function merge_ts(){
  var arr = $.unique(css_ts('bookings'));
  var dai = $.unique(css_ts('diary'));

  var update = function(items, name, bg, border, firstborder, lastborder) {
    var style = {'background-color':bg,'border-color':border,'border-width':'1px 1px 0px 1px'};
    var first = {'border-color':firstborder,'border-width':'1px 1px 0px 1px'};
    var last = {'border-color':lastborder,'border-width':'1px 1px 0px 1px'};
    $.each(items, function(index, bid) {
      var selector = "input[type=hidden][class^=" + name + "][value=" + bid + "]";
      $(selector).parent('div').css(style);
      $(selector + ":first").parent('div').css(first);
      $(selector + ":last").parent('div').css(last);
    });
  }

  update(arr,'bookings','#00008b','#ffffff #00008b #ffffff #00008b','#ffffff #00008b #ffffff #ffffff','#ffffff #ffffff #ffffff #00008b');

  update(dai,'diary','#950404','#ffffff #950404 #ffffff #95040','#ffffff #950404 #ffffff #ffffff','#ffffff #ffffff #ffffff #950404');

}
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Dunno if it will work, haven't tested, but it should :)

function merge_ts(){
    var
            classes = [ //Just append this array with what you want
                {'cl' : 'bookings', 'color' : '#00008b'},
                {'cl' : 'diary', 'color' : '#950404'},
                {'cl' : '...', 'color' : '#..'},
                {'cl' : '...', 'color' : '#..'}
            ];


    $.each(classes, function(index, value){
        var
                arr = $.unique(css_ts(value.cl));

        $.each(arr, function(index, bid){
            var
                    all = $("input[type='hidden'][class^='" + value.cl + "'][value=" + bid + "]");

            all.parent('div').css({'background-color':value.color,'border-color':'#ffffff ' + value.color + ' #ffffff ' + value.color,'border-width':'1px 1px 0px 1px'});
            all.filter(":first").parent('div').css({'border-color':'#ffffff ' + value.color + ' #ffffff #ffffff','border-width':'1px 1px 0px 1px'});
            all.filter(":last").parent('div').css({'border-color':'#ffffff #ffffff #ffffff ' + value.color,'border-width':'1px 1px 0px 1px'});
        });
    });
}
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