2

I have been looking for this quite a long time here so I might as well ask.

I'm looking for a switch in Jquery like this pseudocode:

switch($(idvariable).click)
{
     case $someid: break; //if the user clicked this id, something happens
     case $someotherid: break; // if the user clicked another id with name "someotherid"
     case $yetanotherid: break; // ditto
}

Is this possible?

The expected behavior is the following:

If span 1 is clicked something happens. If span 2 is clicked something else happens. Each span has an id, but this should apply to any element be it div span or whatever. For instance if div with given id is clicked then x happens, if span with given id is clicked then y happens.

The point of doing this is not having to do 1000 $("#blabla").click( function etc... The point is grouping them since they have very similar behaviour.

In my case what I want to do is if given element with given id is clicked then increment given hidden element value. The SAME happens if another element with another id is clicked. In addition to this some CSS may have to be performed.

  • Where are you stuck? What did you tried? – A. Wolff May 11 '15 at 8:56
  • you could use .toggle(). this function toggle state of a class, or anything. – Alex May 11 '15 at 8:57
  • @Alex toggle event has been removed from jQuery 1.9: api.jquery.com/toggle-event And anyway, seems this has nothing to do with question (but with title i'd say yes...) ;) – A. Wolff May 11 '15 at 8:57
  • you are kidding me ? oh ok then I should learn from answers here ;) – Alex May 11 '15 at 8:58
  • I am stuck as I don't know how to proceed. It's not that I haven't tried anything I have tried! I have looked for the answer here in SO and elsewhere and I didn't find anything. I'm not asking for fun you know... – Joze May 11 '15 at 9:05
2

Yes, use class to bind click event (or list all id's)

<button class='click-me' id='a1'>1</button>
<button class='click-me' id='a2'>2</button>
<button class='click-me' id='a3'>3</button>

$('.click-me').click(function () {
    switch ($(this).attr('id')) {
        case 'a1':
             break;
        case 'a2':
             break;
        case 'a3':
             break;
    }
});
|improve this answer|||||
  • This worked. I advise using .prop instead of .attr > see Notorious Pet's answer. – Joze May 11 '15 at 10:11
6
$(document).on('click', 'selector', function() {
    var id = $(this).attr('id');

    switch(id) {
        case 'home': 
            //
            break;
        case 'contact':
            //
            break;
        default:
            console.log('No id');
    }
});
|improve this answer|||||
3

You can use the code from @Justinas but it makes no sense, since this code:

$('.click-me').click(function () {
    switch ($(this).attr('id')) {
        case 'a1':
             doSomethingA();
             break;
        case 'a2':
             doSomethingB();
             break;
        case 'a3':
             doSomethingC();
             break;
    }
});

can and SHOULD (for readability purposes) be replaced with:

$('#a1').click(doSomethingA);
$('#a2').click(doSomethingB);
$('#a3').click(doSomethingC);
|improve this answer|||||
  • 1
    Why it should be replaced? If you have 20 elements, than do 20 bindings... That must be written manually...? – Justinas May 11 '15 at 9:00
  • @Justinas But in your case using switch, you still have to write 20 different cases – A. Wolff May 11 '15 at 9:02
  • but the question was "how to use switch", not "what is the best way to do stuff" :) – Random May 11 '15 at 9:17
  • Random is right. And It shouldn't be replaced. For readability purposes and saving code lines a switch is much more practical. – Joze May 11 '15 at 9:19
  • 1
    @A.Wolff at least we can agree we disagree :-) – Joze May 11 '15 at 9:28
1

Try this

function callSwitch(value) {
    switch(value) {
        case 'someid':
        break;

        //etc..
    }
}

$(".switchclick").on('click', function() {
    var myid = $(this).prop('id');
    callSwitch(myid);
});
|improve this answer|||||
  • $(this).prop('id') or $(this).attr('id'), ok but why not just this.id ? :) – A. Wolff May 11 '15 at 9:00
  • Sometimes this.id doesn't work for whatever reason, and on SO I always want to post the answer I'm sure is going to work and not take chances of getting downvoted or not getting the accept. – Tech Savant May 11 '15 at 9:09
  • your only motivation is reputation ? oh... :p – Random May 11 '15 at 9:27
  • @Random No, actually if that was my only motivation I wouldn't be on here. But my rep is still low, I cannot even do some basic things without getting approved, like edit posts and what not. And it is very rare that I can find a review queue that is not empty since I only have access to 3 of them right now along with a million other people. So yeah rep is important at this stage, but not everything, by a longshot. – Tech Savant May 11 '15 at 10:39

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