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.

I am using Date.js to display some dates and a weird thing happens. If I use it in an array formed from within an each statement.

Here is what i mean:

If I pass and use the events_array to the test function array everything works fine, but if I use the eventsArray one, that should look the same, I get:

startDate is undefined
...new Date(startDate.getFullYear(), startDate.getMonth(), startDate.getDate()).getTime()...

function getTest() {
    $.ajax({
        type: "GET",
        url: "/index",
        dataType: "json",
        success: function (data) {

            var eventsArray = new Array();

            jQuery.each(data, function (i, val) {

                eventsArray.push(
                new Array({
                    startDate: new Date(2011, 07, 20, 15, 50),
                    endDate: new Date(2012, 00, 10),
                }));
            });

            var events_array = new Array({
                startDate: new Date(2011, 07, 20, 15, 50),
                endDate: new Date(2012, 00, 10),
            }, {
                startDate: new Date(2011, 07, 20, 15, 50),
                endDate: new Date(2012, 00, 10),
            });

          test(events_array);

        }
    });
}

Any ideas?

Thanks

share|improve this question
    
What test() function? I don't see that defined anywhere... –  Brad Jun 7 '12 at 20:03
    
Why is eventsArray full of arrays with a single object in each one? Did you actually mean to push just the object? –  apsillers Jun 7 '12 at 20:07

3 Answers 3

up vote 1 down vote accepted

You probably meant to fill eventArray with objects, not arrays with a single object in each one:

eventsArray.push({ // NOT new Array...
    startDate: new Date(2011, 07, 20, 15, 50),
    endDate: new Date(2012, 00, 10)
}); });
share|improve this answer
    
thanks all, this is the solution, in fact all answers work just fine, but seniority rocks :) –  Patrioticcow Jun 7 '12 at 20:36

your two arrays are not identicals : var eventsArray = new Array();

        jQuery.each(data, function (i, val) {

            eventsArray.push(
            new Array({
                startDate: new Date(2011, 07, 20, 15, 50),
                endDate: new Date(2012, 00, 10),
            }));
        });
        /* here eventsArray is like that [[{
                startDate: new Date(2011, 07, 20, 15, 50),
                endDate: new Date(2012, 00, 10),
            }]] Look at the two [[ or ]] : array of object in an array
         */
        var events_array = new Array({
            startDate: new Date(2011, 07, 20, 15, 50),
            endDate: new Date(2012, 00, 10),
        }, {
            startDate: new Date(2011, 07, 20, 15, 50),
            endDate: new Date(2012, 00, 10),
        });
        /* here events_array is like that [{
                startDate: new Date(2011, 07, 20, 15, 50),
                endDate: new Date(2012, 00, 10),
            }, {}] only one [ ... array of objects ...
         */

i think you should use :

eventsArray.push({
    startDate: new Date(2011, 07, 20, 15, 50),
    endDate: new Date(2012, 00, 10)
}); });

Hope this helps

share|improve this answer

Within your test function try following:

function test(eventsArray) {
  // try this

  eventsArray[0][0].startDate
}

eventsArray looks like following:

eventsArray = [ 
                 [
                     {
                          startDate: ..
                          endDate: ..
                     }
                 ] 
              ];

But you should make it easier:

var eventsArray = new Array();

    eventsArray.push({
     startDat: ..
     endDate: ..
    });

Don't use additional array within eventsArray if you not need it.

and to access that values use:

eventsArray[0].startDate;

eventsArra[0].endDate;

If you look at your events_array, you'll see that, you're not using additional array when you push data within it.

share|improve this answer

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.