I need help for a problem in my book probability A bridge hand is found by takin
ID: 3299840 • Letter: I
Question
I need help for a problem in my book probability
A bridge hand is found by taking 13 cards at random and without replacement from a deck of 52 playing cards. Find the probability of drawing each of the following hands.
a) one in which there are 5 spades, 4 hearts, 3 diamond, and 1 club.
b) Suppose you are dealt 5 cards of one suit, 4 cards of another. would the probability of having the other suits split 3 and 1 be greater than the probability of having them split 2 and 2.
I am having trouble setting this up (a) and having trouble understanding (b)
Explanation / Answer
a )
In standard deck there are 52 cards and 4 suits ( spades, hearts, diamonds, club )
Each suit contain 13 cards.
The number of possible ways that 13 cards are drawing each with 5 spades, 4 hearts, 3 diamonds, and 1 clubs is,
13C5*13C4*13C3*13C1
Total number of possible ways that 13 cards drawing from 52 cars is, 52C13
So probability that drawing each with 5 spades, 4 hearts, 3 diamonds, and 1 clubs is,
p = (13C5*13C4*13C3*13C1 ) / 52C13 = 0.0054
b )
Number of possible ways to select 5 cards from one suit is , 4C1*13C5
Number of ways to select 4 cards from another is , 3C1*13C4
Number of ways to to select 3 cards from remaining one suit and 1 from another suit is , 2C1*13C3*13C1
Total number of ways dealt 5 cards of one suit, 4 cards of another. other suits split 3 and 1 be
(4C1*13C5)*(3C1*13C4)*(2C1*13C3*13C1)
So , required probability is,
(4C1*13C5)*(3C1*13C4)*(2C1*13C3*13C1) / 52C13 = 0.1293
Similarly,
Probability that dealt 5 cards of one suit, 4 cards of another. other suits split 2 and 2 be
(4C1*13C5)*(3C1*13C4)*(13C2*13C2) / 52C13 = 0.1058
So the probability of having the other suits split 3 and 1 be greater than the probability of having them split 2 and 2.
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