38

I have the following function which when triggered will make a DIV become semi-transparent.

function changeOpacity(el) {
    var elem = document.getElementById(el);
    elem.style.transition = "opacity 0.5s linear 0s";
    elem.style.opacity = 0.5;
}

However I would like this function to apply to several DIVs simultaneously. I tried giving each DIV the same class name and then using getElementsByClassName but couldn't figure out how to implement it.

Would querySelectorAll be more appropriate and if so how would I implement it?

1
  • 1. select all matching element using querySelectorAll 2. Loop over this collection and add the styles to individual element. I'd recommend to use class with classList
    – Tushar
    Oct 16, 2015 at 19:23

3 Answers 3

43

I would select them with a querySelectorAll and loop over them.

function changeOpacity(className) {
    var elems = document.querySelectorAll(className);
    var index = 0, length = elems.length;
    for ( ; index < length; index++) {
        elems[index].style.transition = "opacity 0.5s linear 0s";
        elems[index].style.opacity = 0.5;
    }
}

Edit: As a comment said you might be better off putting styling values in a CSS class if they are not dynamic and use:

elems[index].classList.add('someclass');
8
  • One change - need to use a comma instead of semi-colon at end of var elems line Oct 18, 2015 at 10:44
  • 1
    Just to simplify it imho. Actually it works as you say but one thing that I've noticed (not against your correct solution but a problem that I didn't address) was that I forgot to add the fullstop to the class names in my function call (slaps head) Oct 18, 2015 at 17:36
  • 1
    which I didn't post (slaps head again) Oct 18, 2015 at 17:37
  • 1
    @the12 are you referring to index and length? For index no reason really, just how I have always done it. As for length, that is for performance reasons. You most likely won't ever see an issue with small lengths but elems.length will be called each time it loops when it is inside the for statement and that can affect performance. Better to get the length once outside the loop and store it. Feb 1, 2017 at 20:35
  • 1
    @the12 no problem. Happy to answer and help. The semicolons are required I believe even if you omit the initialization, condition or final expression block. None of the 3 blocks are required but the two semicolons are. Feb 2, 2017 at 0:53
25

Another way this can be done is with forEach() and ES6+

function changeOpacity(className) {
    document.querySelectorAll(className).forEach(el => {
        el.style.transition = "opacity 0.5s linear 0s";
        el.style.opacity = 0.5;
    });
}

I especially like this syntax when only one style property needs to be updated. For example, if you only needed to change the opacity, and not the transition, you could use a single line:

function setOpacity(className) {
    document.querySelectorAll(className).forEach(el => el.style.opacity = 0.5);
}

You could then use a separate method for setting the transition:

function setTransition(className) {
   document.querySelectorAll(className).forEach(
       el => el.style.transition = "opacity 0.5s linear 0s";
   });
}
-1

Use the new ES6 Array.map() to loop over every item and change the properties

document.querySelectorAll(selector).map(item => {
item.style.transition = "opacity 0.5s linear 0s";
item.style.opacity = 0.5;
})
2
  • 5
    This doesn't work, since document.querySelectorAll returns a NodeList and not an array. map is an array method...
    – Kiekem
    Jan 4 at 22:16
  • Yes, this answer will not work. You must convert the NodeList to an array first. In modern browsers the easiest way is Array.from which works just fine on array-like objects such as NodeList . Then you can use map with no issue. Array.from(document.querySelectorAll(selector)).map( item => { return item; } ); My only complaint though is you aren't really using map properly. map returns a new array and expects the provided function to also return a value all of which you ignore here and technically that's an anti-pattern and can lead to all kinds of technical debt among other things. Jul 14 at 15:02

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.