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What's the native equivalent of jQuery's $.fn.has?

For example, how would you write the following code:

$("li").has("ul").css("background-color", "red");

In vanilla JavaScript?

NOTE: This question is about the has function and not the contain function.

11
  • 2
    Wouldn't this be easier with CSS?
    – DA.
    Aug 31, 2017 at 21:32
  • 1
    @DA. CSS doesn't have any kind of parent selector
    – Lennholm
    Aug 31, 2017 at 21:35
  • 1
    jQuery's source is on github you can see how they do it by going through the source files Aug 31, 2017 at 21:35
  • 1
    @ViniciusSantana You haven’t provided an attempt of your own or shown any research effort of your own, for example. Aug 31, 2017 at 21:39
  • 2
    @ViniciusSantana Why negativity? I didn’t even downvote and provided something to start with. The possible reasons for a downvote are all included in the tooltip on the voting arrow: “This question does not show any research effort; it is unclear or not useful”. Aug 31, 2017 at 21:49

3 Answers 3

3

I would basically do it the way the jQuery specification for .has() describes it, i.e. filtering the collection by trying to select the required element from the descendants of each element:

var liElements = Array.from(document.querySelectorAll("li"));
var liElementsThatHaveUl = liElements.filter(function(li) {
  return li.querySelector("ul");
});

liElementsThatHaveUl.forEach(function(li) {
  li.style.backgroundColor = "red";
});
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Since i don't use jQuery, I can not make not sure if has selects all <li> elements which are direct parents of <lu> elements (like CSS selector li > ul) or selects all <li> elements having <lu> elements under (like CSS selector li ul). Chose the one you like;

Array.from(document.querySelectorAll("li ul")).reduce((r, e) =>
  r.length ? (r[r.length - 1] === e.parentElement ? r : r.concat(e.parentElement)) : r.concat(e.parentElement), []
);

Thanks @Barmar's comment for the clarification.

1
  • 1
    $("li").has("ul") means select all <li> for which li ul would return something.
    – Barmar
    Aug 31, 2017 at 22:23
0

I know this is an extremely late answer but here is an updated version of Lennholm's answer.

const has = (selector, sub) => {
  const matches = Array.from(document.querySelectorAll(selector));
  return matches.filter(match => match.querySelector(sub) !== null);
};

has("li", "ul").forEach(li => {
  li.style["background-color"] = "red";
});

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