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27 February, 03:33

A die is rolled 8 times. given that there were 3 sixes in the 8 rolls, what is the probability that there were 2 sixes in the first five rolls

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  1. 27 February, 03:52
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    Answer: 15/28

    Suppose the following:

    event A: the event that there were 3 sixes in the 8 roles,

    event B: the event that there were 2 sixes in the first 5 roles.

    Then the conditional probability to find is P (B|A) = P (A∩B) / P (A).

    P (A) = C (3,8) * (1/6) ^3 * (5/6) ^5,

    P (A∩B) = C (2,5) * (1/6) ^2 * (5/6) ^3*C (1,3) * (1/6) * (1/6) ^2

    ∴P (B|A) = 15/28
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