In throwing 3 dice the probability that at least 2 of the three numbers obtained are same
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Here's the answer:
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
¶¶¶ POINTS TO REMEMBER ¶¶¶
• Probability of occurrence an Event
= No. of Favourable Outcomes of that Event / Total No. of outcomes
• No. of total outcomes when n dice are rolled = 6^n
• The probability that at least two dice have to show the same number P(E) = 1 - ( Probability that all show different numbers P(E') )
•°• Required probability P(E) = 1 - P(E')
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
SOLUTION :
Let S be the sample space
n(S) - No. of total outcomes when 3 dice are rolled
n(S) = 6³ = 6×6×6 = 216
STEP-1 : Find P(E')
E' be the Event that no dice have the same number
••• For 3 dice ,
° The first dice can take any of 6 number when theft first dice is rolled.
° Now, there are only 5 options left for second dice and only 4 left for the third dice so as to satisfy the Event E'.
n(E') - total number of viable options to satisfy Event E
n(E') = 6 × 5 × 4 = 120
Probability that no dice have the same number P(E') = n(E') / n(S)
P(E') = 120/216 = 5/9
•°• The probability that all 3 dice show a different number is 5/9
STEP -2 : Find P(E)
E be the Event that at least two dice have to show same number
P(E) = 1 - P(E') = 1 - 5/9 = 4/9
The probability that at least 2 of them show the same number is 4/9
•°• Required probability = 4/9
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
### I Originally answered @
https://brainly.in/question/6543936?utm_source=android&utm_medium=share&utm_campaign=question
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
¢#£€®$
:)
Hope it helps
Here's the answer:
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
¶¶¶ POINTS TO REMEMBER ¶¶¶
• Probability of occurrence an Event
= No. of Favourable Outcomes of that Event / Total No. of outcomes
• No. of total outcomes when n dice are rolled = 6^n
• The probability that at least two dice have to show the same number P(E) = 1 - ( Probability that all show different numbers P(E') )
•°• Required probability P(E) = 1 - P(E')
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
SOLUTION :
Let S be the sample space
n(S) - No. of total outcomes when 3 dice are rolled
n(S) = 6³ = 6×6×6 = 216
STEP-1 : Find P(E')
E' be the Event that no dice have the same number
••• For 3 dice ,
° The first dice can take any of 6 number when theft first dice is rolled.
° Now, there are only 5 options left for second dice and only 4 left for the third dice so as to satisfy the Event E'.
n(E') - total number of viable options to satisfy Event E
n(E') = 6 × 5 × 4 = 120
Probability that no dice have the same number P(E') = n(E') / n(S)
P(E') = 120/216 = 5/9
•°• The probability that all 3 dice show a different number is 5/9
STEP -2 : Find P(E)
E be the Event that at least two dice have to show same number
P(E) = 1 - P(E') = 1 - 5/9 = 4/9
The probability that at least 2 of them show the same number is 4/9
•°• Required probability = 4/9
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
### I Originally answered @
https://brainly.in/question/6543936?utm_source=android&utm_medium=share&utm_campaign=question
•°•°•°•°•°•<><><<><>><><>•°•°•°•°•°
¢#£€®$
:)
Hope it helps
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