Assume player A, B throw a pair of fair dices in turn. Player A is the winner if the sum of two dices is 5 at the round he throw and player B is the winner if the sum of the dices is 9 at his turn. Once any one of the player achieve their number, the game end and he will become the winner.What is the expected number of rolls such that A or B wins
Expectation of the number of games A or B wins?
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probability
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0It is asking di$f$ferent things, do you mean i have to ask on the same question? – 2012-11-05
1 Answers
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Hint: what is the chance the game ends when A tosses-call it $a$? what is the chance when B tosses-call it $b$? The expectation is then $1\cdot a + 2(1-a)b + 3(1-a)(1-b)a +4(1-a)(1-b)(1-a)b + \ldots$ where I have written it (number of rounds)(chance to not end before that round)(chance to end that round)
Added: A simpler approach is to let $n$ be the number of total rounds, with a round being a toss by A and maybe one by B. You play another round with probability $(1-a)(1-b)$ so the expected number of rounds is $\frac 1{(1-a)(1-b)}$. Given that you end on a particular round, you should be able to calculate the chance that A wins, and therefore the chance that you play only one game.
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0@Mathematics: Yes, $n$ is geometric. Yes, I think the second is much faster. – 2012-11-05