according to my previous link probability calculation in dice throwing i have tried to solve following problem:
A bag contains $4$ white and $3$ black balls. Four balls are successively drawn out with replacement. Find the probability that they are alternatively of different colors.
so first thing ,we have in total $7$ ball,then with replacement means that we always have $7$ ball,so we are taking and putting again in,if we want that four ball occurs in such order,so that create alternative colors would be
black,white,black,white
or
white,black,white,black
this order is asked right?now my question is what is a number of other possible occurring? for example one possible thing is all of them white,or all of them black,also for each white we have $4$ possibility or $12$ and again for each black we have $3$ possibility again $12$,so in total it would be $26$ right?i added all black and all white?or just $24$,first of all what i have tried was
$4/7$ * $3/7$ * $4/7$ * $3/7$ which is equal to $ 144/2401$,but this answer is wrong and that why i would like to count total number of let say success and divide it by total number of occurring of balls.please help me