for part a: would the probability that a 6 comes up on the nth try be (5/6)^(n-1) *(1/6)? Brandy
That makes sense to me JRHaynie
for part a: would the probability that a 6 comes up on the nth try be (5/6)^(n-1) *(1/6)? Brandy
That makes sense to me JRHaynie