I have been watching the linked video on character tables of $S_4$ and $A_4$. I understand the process used in $S_4$, but I am having difficulty with that of $A_4$.
The conjugacy classes of $S_4$ are given in the video by $\{id, [(12)], [(123)], [(12)(34)], [(1234)]\}$, this I understand.
However when moving to $A_4$ the classes are given by $\{id, [(123)], [(132)], [(12)(34)]\}$. Why are the three cycles now represented by two conjugacy classes?
I do not see how this result is arrived at.
In $S_4$, the two $3$-cycles are conjugate:
$(2,3)(1,3,2)(2,3)=(1,2,3)$.
But in $A_4$, you have less things to conjugate with, so pairs that used to be conjugate might not be conjugate anymore. Like here, you cannot use $(2,3)$ to conjugate again, because $(2,3)\notin A_4$.
Surely you can just compute the conjugacy class of each element on your own, if it seems unclear.