We have a condensed deck of 40 cards containing only the denominations from Ace through 10. We draw

skynugurq7

skynugurq7

Answered question

2022-07-02

We have a condensed deck of 40 cards containing only the denominations from Ace through 10. We draw four cards uniformly at random (without replacement).
1. What is the probability that we draw four distinct denominations, such as one Ace, one five, one six and one seven.
2. What is the probability that we draw at least three hearts.
For 1, let's say we divide the the 40 cards into 10 piles of 4 cards each (of each kind Ace to 10). Then there are 10C4 ways to choose 4 piles and 4C1 ways to choose a card from each pile, so the probability should be ((10C4)(4)(4C1))/(40C4) = 0.036. Is this correct or am I missing something?
For 2, I think something like 1 - Pr(choosing exactly 2 hearts) could work, but I don't know where to go from here.

Answer & Explanation

Lana Schwartz

Lana Schwartz

Beginner2022-07-03Added 8 answers

We have a condensed deck of 40 cards containing only the denominations from Ace through 10.

Presumably that is those ten denominations in each of the four standard suits.

We draw four cards uniformly at random (without replacement).
What is the probability that we draw four distinct denominations, such as one Ace, one five, one six and one seven.

Well, we are comparing the count for ways to select four from ten denominations, with each in one from four suits, to the count for ways to select four from forty cards. That "each" means we are not multiplying 4 C 1 by 4 but rather empowering it.
10 C 4 ( 4 C 1 ) 4 40 C 4 = 40 36 32 28 40 39 38 37

What is the probability that we draw at least three hearts.
For 2, I think something like 1 - Pr(choosing exactly 2 hearts) could work, but I don't know where to go from here.

That is not the correct complement.

The event of interest is drawing 3 or 4 from the four hearts (with the remainder of cards drawn being other suits). The complement of this is drawing 0, 1, or 2 from the four hearts.

Thus using the rule of complements is contra-indicated -- as calculating the probability for the complement would take more effort. (However, it will still get you the answer).

And you just use the rule of addition: the probability for the union of disjoint events is the sum of the probabilities for those events. So add the probability for drawing three hearts to the probability for drawing four hearts.
4 C 3 36 C 1 + 4 C 4 36 C 0 40 C 4 = 1 4 C 0 36 C 4 + 4 C 1 36 C 3 + 4 C 2 36 C 2 40 C 4
Jamison Rios

Jamison Rios

Beginner2022-07-04Added 6 answers

For 1. P = 36 × 32 × 28 39 × 38 × 37 = 0.588248
For 2. There are two terms: exactly three hearts and exactly four hearts.
P 3 = 4 × 30 × 10 × 9 × 8 40 × 39 × 38 × 37 = 0.0393916
P 4 = 10 × 9 × 8 × 7 40 × 39 × 38 × 37 = 0.00229784
Total P = 0.04168944

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