3

Hello this code gets tells me if current element has class.

e.srcElement.className.indexOf('thisClass') === 0  

How do i also check if element or any of its parents have the class?

4
  • 2
    Where are the ancestor elements ? Please provide HTML as well..
    – Rayon
    Commented Jan 5, 2016 at 4:54
  • ancestor elements don't matter, it could have infinity divs wrapped around it
    – B Hull
    Commented Jan 5, 2016 at 4:58
  • Question seems incomplete to me. A proper markup would give us more idea about the post..
    – Rayon
    Commented Jan 5, 2016 at 5:02
  • similar: stackoverflow.com/q/16863917
    – djvg
    Commented Mar 20, 2023 at 10:46

5 Answers 5

14

Nowadays one can use the widely supported JavaScript closest method.

const parentHasClass = element.closest('.thisClass');
6

Using the parentNode of an element, it's possible to go through the parents list.
Use the following function:

function elementOrAncestorHasClass(element, className) {
  if (!element || element.length === 0) {
    return false;
  }
  var parent = element;
  do {
    if (parent === document) {
      break;
    }
    if (parent.className.indexOf(className) >= 0) {
      return true;
    }
  } while (parent = parent.parentNode);
  return false;
}

This fiddle shows the function in action.

1

You just need to traverse the DOM. To go one parent up, use parentNode.

Do traverse infinitely upwards, you'll need to use a loop:

for(var i = 0; i < nodes.length; i++) {
  // check if each parentNode has the class
}

It's a tedious process. That's why libraries like jQuery exist for the sole purpose of DOM traversal/manipulation.

1

I can offer to use next methods:

function hasClass(element, className) {
    return !(!className || !element || !element.className 
    || !element.className.match(new RegExp('(\\s|^)' + className + '(\\s|$)')));
}

function parentByClass(childElement, className) {
    if (!childElement || childElement === document) {
        return null;
    } else if (hasClass(childElement, className)) {
        return childElement;
    } else {
        return parentByClass(childElement.parentNode, className)
    }
}

function hasClassInTree(element, className) {
    return hasClass(element, className) || parentByClass(element, className)
}

So in you case condition will be

if (hasClassInTree(e.srcElement, 'thisClass')) { ... }
2
  • I needed to put the childElement === document check before the hasClass(childElement, className) check otherwise it throws an error in hasClass because document.className is undefined. I have suggested an edit to your answer to fix this. Thanks for the function!
    – user993683
    Commented May 5, 2016 at 15:48
  • @JoeRocc Thank you, you are right! Let's make it more compact and secure =) Commented May 6, 2016 at 17:08
-1

May be its easier to find all the elements that have the class, and check if any of them contain the current node (not tested code):

   function checkParentClass(e,className){
      var nodesWithClass =document.getElementsByClassName("className");

      var index =0;
      var found = false;

      while(index< nodesWithClass.length && !found){
         if (nodesWithClass[index].contains(e))
         {
            found = true;
         }
         index++;
      }

      return found;
    }

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