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In the game of roulette, a player can place a $10 bet on the number 15 and have a38probability of winning. If the metal ball landson 15, the player gets to keep the $10 paid to play the game and the player is awarded an additional $350. Otherwise, the player isawarded nothing and the casino takes the player's $10. What is the expected value of the game to the player? If you played thegame 1000 times, how much would you expect to lose?The expected value is $0(Round to the nearest cent as needed.)

User Supergiox
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1 Answer

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Answer: The expected value of the game to the player is $ 0.53( It means losing), and the amount expected to lose when the game is played 1000 times is $ 530.

Step-by-step explanation:

Given:

The winning amount of the player = $350

The probability of winning the game = 1/38

The amount that the player gets to keep to play the game=$10

Since the probability of winning the game is 1/38, the probability of losing the game is 1-1/38.

To find the expected value of the game to the player, we use:


\begin{gathered} \text{Expected Value=(350)(}(1)/(38))\text{ + (-10)(1-}(1)/(38)) \\ Calculate\text{ } \\ =-0.53 \\ \end{gathered}

Expected value= - $ 0.53( It means losing)

The amount expected to lose when the game is played 1000 times is:

1000($ 0.53) =$ 530

Therefore, the expected value of the game to the player is $ 0.53( It means losing), and the amount expected to lose when the game is played 1000 times is $ 530.

User Nicolast
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