19

A colleague of mine insists that it is important to check first if a class exists on an element before adding or removing it.

Therefore he has lot of constructs in his code like this:

if (element.classList.contains('info')) {
    element.classList.remove('info');
}

if (!element.classList.contains('hint')) {
    element.classList.add('hint');
}

I personally guess that nothing would happen if one leaves the check with .contains( ) out.

Shall mean:

If the class isn't there nothing is removed. The statement is just meaningless.

If the class is already there then nothing is added.

Is my colleague right with his insisting on the check because not checking could result in some trouble?

Or can I forget about that checking?

0
36

Explicitly checking is pointless. It is a waste of time and bloats your code.

Those checks are effectively built-in to the add and remove class methods.

If you try to add a class that the element is already a member of, then classList.add will ignore it.

If you try to remove a class that the element isn't a member of, then classList.remove will do nothing.

3
  • I agree, and even if it had a use, which it hasn't, one should consider putting this "checking" code into some sort of function, if only for the sake of briefness in the code. – Marcos Sandrini May 3 '16 at 8:37
  • @Quentin " ... and bloats your code." Yeah, exactly. That's what I thought when I saw it. Thanks a lot. – michael.zech May 3 '16 at 8:42
  • 3
    Note: using classList.remove on a class that does not exist on a element fires an error in Internet Explorer 10. If you're willing to support this browser, take care - classList.add has no problem. – Lamecarlate Jun 23 '17 at 14:45
3

Both the ways are correct there is no sense that it is important but in some cases you may need to use .contains() totally depends on you situation.

But globally its not important you can directly remove the class. If class exists then code will work otherwise not.

0

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