> $obj1 = $obj1.add($obj2); Ok, this is what I was missing.
I don't know why I assumed it would work this way when .filter() is the same.
- [jQuery] .add() Scott
- Re: [jQuery] .add() Charlie Griefer
- [jQuery] Re: .add() Scott
- Re: [jQuery] Re: .add() Charlie Griefer
- [jQuery] Re: .add() MorningZ
- [jQuery] Re: .add() Scott
- [jQuery] Re: .add() MorningZ
- [jQuery] Re: .add() Scott
