beanari said:
ok i suck at probability. please explain how this works..
Ryan buys three tickets in a guessing competition which has two prizes. Altogethr 100 tickets are sold.
calculate the probability that he will win
i. both first and second prize
ii. exactly one prize
iii. at least one prize
iv. no prize
help. i totally dont get this
The easiest way is to draw a tree diagram. Remember the facts. THere are 2 prizes. THerefore on the first pick of a prize he has a 3 in 100 chance of winning. The chance of losing on the first pick is therefore 97/100.
Ok so if he wins the first prize it means that a ticket has been taken away. Therefore the chance of winning on the second go is 2 / 99 with losing being 97/99.
Ok so the questions
i.) Well first pick of the prizewinners says that he has a 3 in 100 chance. Then if he wins that - the chance of winning the second prize also becomes 2/99.
Therefore 3/100 * 2/99 = 1 / 1650
ii.) There are two prizes, so two chances of winning, so the possibe combinations for exactly 1 prize win is WL, LW.
That means (3/100 * 97/99) + (97/100 * 3/99) = 97 / 1650
iii.)At least one prize means that we can have: WW, WL, LW. Alternatively we can subtract the possibility of LL from 1.
P(At least one win) = 1- P(LL)
1 - (97/100 * 96/99) = 49 / 825
iv.) No prize is LL so,
97/100 * 96/99 = 776 / 825
