1

For each day, I do another foreach to return css top value:

$('.day').each(function() {
  $(this).find('.event').each(function() {
    var top = $(this).css('top');
  });
});

I would like to know if I can compare 2 top value?
I need that because, if 2 top value are equals, I add new class.

EDIT :

For example :

First event : 2017-08-07 at 8am

Second event : 2017-08-07 at 8am

Third event : 2017-08-07 at 2pm

In my website:

-8am is 'top: 50px'
-2 pm is 'top: 600px'

If first-event->top-position == second-event->top-position

I hope, this will help you.

4
  • Add in if statement, such as if (top === whatever) { //do some work}
    – TGarrett
    Aug 16 '17 at 14:52
  • Are there only ever two?
    – StudioTime
    Aug 16 '17 at 14:56
  • Which 2 do you want to compare?
    – user1017882
    Aug 16 '17 at 14:58
  • @TGarrett : I cant compare with "whatever". If 2 events are on same time, i add class to have different style. --- Darren Sweeney : Can be a lot of event at the same time per day. --- JayMee : I would like to compare 2 top position because top position define 'time' (hour).
    – Reitrac
    Aug 16 '17 at 14:58
0

Here you can compare the top position of .day with the top position of its children, hoping this is what you meant.

Edited to compare top position of event compared to previous event for that day

var pos;
$('.day').each(function(__idx, __el) { 
  pos = false;    
  $(__el).find('.event').each(function(_idx, _el) {
       if(pos){
           if($(_el).position().top === pos){
               //do your thing here
           }
      }
      pos = $(_el).position().top;
  });
});
5
  • Thanks for your reply. Not exactly what i want. I would like to compare 2 events. Top position define the start_time of the event. I would like to compare to add class for diffrent style.
    – Reitrac
    Aug 16 '17 at 15:10
  • Edited post to compare events within the same day
    – Eric
    Aug 16 '17 at 15:16
  • Yes it woks ! This added my class on the second element, how add same class to the first 'true' element ?
    – Reitrac
    Aug 16 '17 at 15:26
  • I answered my own question, I used .pev(). Thanks a lot :)
    – Reitrac
    Aug 16 '17 at 15:28
  • Glad I could help :)
    – Eric
    Aug 16 '17 at 15:29
0

You can use ternary operator or an if/else. I prefer ternary in such cases.
You can compare values by

var top = topValRec === topValOld? /*value if condition is true*/ : /*  value if condition is false */ 

Here topValRec is the recent value and topValOld is the value it needs to be compared with

So if I wanted top to have value 10 if condition is true and 20 if condition is false I'd write

var top = topValRec === topValOld ? 10 : 20

Edit 17th August

var position;
$('.day').each(function() {
    position = false;
    $(this).find('.event').each(function() {
        var classToBeAdded = $(this).position().top === position ? "class_Name_If_True" : "class_Name_If_False";
        $(this).addClass(classToBeAdded);
  });
 position = $(_el).position().top;
});
8
  • thanks, I understand what you mean, but I dont understand how this can be works with my code. Can you explain with my example ?
    – Reitrac
    Aug 16 '17 at 15:17
  • Not on PC right now replied via mobile phone, will be on PC shortly, will update answer shortly probably an hour or so, meanwhile I'll try to write code on mobile. Aug 16 '17 at 15:20
  • @Eric answered my question, but I would be glad to know yours
    – Reitrac
    Aug 16 '17 at 15:29
  • @Reitrac I've updated the answer sorry for delay. I am not well so, took me fair time to get up and running. BTW I supposed that you wanted to add different classes based on condition, if there is something else you wished to do I'll be glad to know. Aug 17 '17 at 16:31
  • thanks ! I'll try and keep u informed :) have another questions but based on WordPress :)
    – Reitrac
    Aug 18 '17 at 7:45

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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