A pair of fair dice is rolled once. suppose that you lose $ 8 if the dice sum to 3 and win $ 13 if the dice sum to 10 or 12. how much should you win or lose if any other number turns up in order for the game to be fair?
Accepted Solution
A:
You should lose $1.20 for any other outcome to make it a fair game.
There are 2 ways to get a sum of 3 out of 36 outcomes; this probability is 2/36. There are 4 ways to get a sum of 10 or 12 out of 36 outcomes; this probability is 4/36. There are 36-(2+4) = 36-6 = 30 other outcomes out of 36; this probability is 30/36.
We lose $8 if we get a sum of 3; this expected value is -8(2/36) = -16/36. We win $13 if we get a sum of 10 or 12; this expected value is 13(4/36) = 52/36. Using x as the amount we win or lose for the other outcomes, the expected value is 30x/36.
In order to be a fair game, the amount we win and/or lose should come outto( $0 total.
Together we have the equation -16/36+52/36+30x/36 = 0
Adding the fractions, we have (-16+52+30x)/36 = 0 (30x+36)/36 = 0
Multiplying both sides by 36, 30x+36=0*36 30x+36=0
Subtracting 36 from both sides, 30x+36-36=0-36 30x=-36
Dividing both sides by 30, 30x/30 = -36/30 x=-36/30 = -1.2