Difference between revisions of "1980 AHSME Problems/Problem 20"
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We want the number of Successful Outcomes over the number of Total Outcomes. We want to calculate the total outcomes first. Since we have <math>12</math> coins and we need to choose <math>6</math>, we have <math>\binom{12}{6}</math> = <math>924</math> Total outcomes. For our successful outcomes, we can have <math>(1) 1</math> penny and <math>5</math> dimes, <math>2</math> nickels and <math>4</math> dimes, <math>1</math> nickel and <math>5</math> dimes, or <math>6</math> dimes. | We want the number of Successful Outcomes over the number of Total Outcomes. We want to calculate the total outcomes first. Since we have <math>12</math> coins and we need to choose <math>6</math>, we have <math>\binom{12}{6}</math> = <math>924</math> Total outcomes. For our successful outcomes, we can have <math>(1) 1</math> penny and <math>5</math> dimes, <math>2</math> nickels and <math>4</math> dimes, <math>1</math> nickel and <math>5</math> dimes, or <math>6</math> dimes. | ||
− | For the case of <math>1</math> penny and <math>5</math> dimes, there are <math>\binom{6}{5}</math> ways to choose the dimes and <math>2</math> ways to choose the pennies. That is <math>6 \cdot 2 = 12</math> successful outcomes. For the case of <math>2</math> nickels and <math>4</math> dimes, we have <math>\binom{6}{4}</math> ways to choose the dimes and <math>\binom{4}{2}</math> ways to choose the nickels. We have <math>15 \cdot 6</math> = <math>90</math> successful outcomes. For the case of <math>1</math> nickel and <math>5</math> dimes, we have <math>\binom{4}{1} \cdot \binom{6}{5} = 24</math>. Lastly, we have <math>6</math> dimes and <math>0</math> nickels and <math>0</math> pennies, so we only have one case. Therefore, we have <math>\dfrac {12 + 90 + 24 + 1}{924} = | + | For the case of <math>1</math> penny and <math>5</math> dimes, there are <math>\binom{6}{5}</math> ways to choose the dimes and <math>2</math> ways to choose the pennies. That is <math>6 \cdot 2 = 12</math> successful outcomes. For the case of <math>2</math> nickels and <math>4</math> dimes, we have <math>\binom{6}{4}</math> ways to choose the dimes and <math>\binom{4}{2}</math> ways to choose the nickels. We have <math>15 \cdot 6</math> = <math>90</math> successful outcomes. For the case of <math>1</math> nickel and <math>5</math> dimes, we have <math>\binom{4}{1} \cdot \binom{6}{5} = 24</math>. Lastly, we have <math>6</math> dimes and <math>0</math> nickels, and <math>0</math> pennies, so we only have one case. Therefore, we have <math>\dfrac {12 + 90 + 24 + 1}{924} = \dfrac{127}{924}</math> = <math>\boxed{C}</math> |
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== See also == | == See also == |
Latest revision as of 13:25, 22 August 2022
Problem
A box contains pennies, nickels, and dimes. Six coins are drawn without replacement, with each coin having an equal probability of being chosen. What is the probability that the value of coins drawn is at least cents?
Solution 1
We want the number of Successful Outcomes over the number of Total Outcomes. We want to calculate the total outcomes first. Since we have coins and we need to choose , we have = Total outcomes. For our successful outcomes, we can have penny and dimes, nickels and dimes, nickel and dimes, or dimes.
For the case of penny and dimes, there are ways to choose the dimes and ways to choose the pennies. That is successful outcomes. For the case of nickels and dimes, we have ways to choose the dimes and ways to choose the nickels. We have = successful outcomes. For the case of nickel and dimes, we have . Lastly, we have dimes and nickels, and pennies, so we only have one case. Therefore, we have =
See also
1980 AHSME (Problems • Answer Key • Resources) | ||
Preceded by Problem 19 |
Followed by Problem 21 | |
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 • 16 • 17 • 18 • 19 • 20 • 21 • 22 • 23 • 24 • 25 • 26 • 27 • 28 • 29 • 30 | ||
All AHSME Problems and Solutions |
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