Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
$('#elmLeft').button({
            icons: {
                primary: "ui-icon-triangle-1-w"
            },
            text: false
        });
$('#elmRight').button({
            icons: {
                primary: "ui-icon-triangle-1-e"
            },
            text: false
        });
$('#elmTop').button({
            icons: {
                primary: "ui-icon-triangle-1-n"
            },
            text: false
        });
$('#elmBottom').button({
            icons: {
                primary: "ui-icon-triangle-1-s"
            },
            text: false
        });
share|improve this question

3 Answers 3

up vote 4 down vote accepted
function setButton($element, icon) {
    $element.button({
            icons: {
                primary: icon
            },
            text: false
        });
}
setButton($('#elmLeft'), "ui-icon-triangle-1-w");
setButton($('#elmRight'), "ui-icon-triangle-1-e");
setButton($('#elmTop'), "ui-icon-triangle-1-n");
setButton($('#elmBottom'), "ui-icon-triangle-1-s");

Alternatively you could just take the selector instead of a jQuery element, and only the last letter of the string, but that seems like overkill.

share|improve this answer

I'm sure it could be made shorter, but not in an elegant way as far as i can see, and the brevity would come at a cost of understandability.

share|improve this answer

You could put the icon differences in an object and use that to alter primary:

var icons = {
    elmLeft:   'w',
    elmRight:  'e',
    elmTop:    'n',
    elmBottom: 's'
};
$('#elmLeft, #elmRight, #elmTop, #elmBottom').each(function() {
    $(this).button({
        icons: { primary: 'ui-icon-triangle-1-' + icons[this.id] },
        text:  false
    });
});

I don't know if you'd consider that DRY enough to warrant the extra complexity though. If you had a class on the buttons then you could make it cleaner with:

$('.some_class').each(function() {
    // As above.
});

Or perhaps you could add a function to icons to keep the id and icon information together:

var icons = {
    elmLeft:   'w',
    elmRight:  'e',
    elmTop:    'n',
    elmBottom: 's',
    button: function(id) {
        $('#' + id').button({
            icons: { primary: 'ui-icon-triangle-1-' + this[id] },
            text:  false
        });
    }
};
icons.button('elmLeft');
icons.button('elmRight');
icons.button('elmTop');
icons.button('elmBottom');

Or take it one step further:

var buttons = {
    ids: {
        elmLeft:   'w',
        elmRight:  'e',
        elmTop:    'n',
        elmBottom: 's'
    },
    create: function() {
        for(id in this.ids) {
            if(this.ids.hasOwnProperty(id)) {
                $('#' + id').button({
                    icons: { primary: 'ui-icon-triangle-1-' + this.ids[id] },
                    text:  false
                });
            }
        }
    }
};
buttons.create();

You could do the above with a self-executing function if you wanted a cleaner namespace:

(function() {
    var ids = {
        elmLeft:   'w',
        elmRight:  'e',
        elmTop:    'n',
        elmBottom: 's'
    };
    for(id in ids) {
        if(ids.hasOwnProperty(id)) {
            $('#' + id').button({
                icons: { primary: 'ui-icon-triangle-1-' + ids[id] },
                text:  false
            });
        }
    }
})();
share|improve this answer
    
Thanks +1. But I think Davy's answer is more practical. –  Pinkie May 21 '11 at 21:43
    
+1/-1 for over-engineering (so net of 0, cool, but leaves the reader of the code thinking wtf is this supposed to do?) –  Davy8 May 21 '11 at 22:29
    
@Davy8: In practice I would have used Pinkie's original and reformatted it to make finding the difference easier (and probably added a comment to point out where the difference was). But sometimes I feel playful. –  mu is too short May 22 '11 at 0:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.