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Using this neat little plugin, http://ricostacruz.com/jquery.transit, very much like jQuery's built in support for:

$('.some-element').css({propname1: 'value1', propname2: 'value2'});

It works like so:

$('.some-element').transition({ x: '40px', y: '40px' });

and I can use variable for the property values like this (this works):

var xVal = '40px',
    yVal = '40px';
$('.some-element').transition({ x: xVal, y: yVal });

but I need to be able to specify the 'type' of transformation via a variable like so (this doesn't work):

<div class="some-element" data-ca-type1="x" data-ca-type2="y"></div>

var xVal = '40px',
    yVal = '40px',
    target = $('.some-element'),
    type1 = target.data('caType1'),
    type2 = target.data('caType2');
target.transition({ type1: xVal, type2: yVal });
share|improve this question
5  
NOTE: var x-val is a syntax error, you can't have a - in a variable name. – Rocket Hazmat Nov 11 '13 at 15:28
3  
class=".some-element" should be class="some-element" so you can select it with . – Explosion Pills Nov 11 '13 at 15:29
    
What "doesn't work"? What's the problem? What happens, doesn't happen? Do you see any errors in your console? What is caType1? Is that a variable, or did you mean target.data('caType1')? – Rocket Hazmat Nov 11 '13 at 15:29
    
no error, just doesn't perform the action, much like how .css may not throw an error in the console if the name/value isn't just right – pingram3541 Nov 11 '13 at 15:52
up vote 0 down vote accepted

You can use [] on arrays and objects to set dynamic property values.

transitionData = {};
transitionData[type1] = xVal;
transitionData[type2] = yVal;
target.transition(transitionData);

I tend to prefer to inline these sorts of things, which can be done by instantiating an anonymous function:

target.transition(new function () {
    this[type1] = xVal;
    this[type2] = yVal;
}());

Although generally I'd probably just keep the transition data directly in the [data-*] attribute as JSON, taking advantage of jQuery's auto-parsing with .data():

HTML:
<div data-ca='{"x":"40px","y":"40px"}'></div>
JS:
$('[data-ca]').each(function () {
    $(this).transition($(this).data('ca'));
});
share|improve this answer
    
This was by far the simplest method, thank you! Oh man, I knew I should have asked earlier...would have saved me loads of time =) – pingram3541 Nov 11 '13 at 16:14

You'll need to create an empty object (or an object with non-dynamic keys) first, then use the square bracket notation to set the values for the dynamic keys. Something like this:

var xVal = '40px',
    yVal = '40px',
    target = $('.some-element'),
    type1 = target.data(caType1),
    type2 = target.data(caType2);
var options = {}
options[type1] = xVal;
options[type2] = yVal;
target.transition(options);

When creating an object using the object literal syntax the keys are always treated as string values. {x: 0} is equivalent to {"x": 0} or {'x': 0}, so even if you have a variable x the JavaScript engine doesn't know that it's supposed to use the value of x rather than the string "x" as the key.

share|improve this answer
    
yep, same thing, no errors once I add '' around target.data('caType1'); but still doesn't apply the animation – pingram3541 Nov 11 '13 at 15:53
    
nevermind, this works...once typos fixed - jsfiddle.net/VpC8t/1 thx – pingram3541 Nov 11 '13 at 16:07

In an object literal, the property names are always literals. You need to use array syntax to create properties with calculated property names:

var x_val = '40px',
    y_val = '40px',
    target = $('.some-element'),
    type1 = target.data('caType1'),
    type2 = target.data('caType2'),
    options = {};
options[type1] = x_val;
options[type2] = y_val;
target.transition(options);
share|improve this answer
    
same as anthony, just needed to add the quotes around the data props, thx – pingram3541 Nov 11 '13 at 16:08
    
@user1157601 Not fair, you changed the question after I posted my answer. – Barmar Nov 11 '13 at 16:11
    
sorry Barmar, didn't change the question, just fixed some typos... your answer was identical to Anthonys and I tried to +1 your answer as useful but I don't have the needed rep yet – pingram3541 Nov 11 '13 at 16:18
    
The question didn't have quotes around caType1 and caType2 when I wrote my answer, so how was I supposed to know those were typos? And where the values of type1 and type2 come from are immaterial to the question and answer. The answer you accepted doesn't even include those lines. – Barmar Nov 11 '13 at 16:21

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