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17 April, 03:22

In a group of people, 32 are Australian-born, 12 were born in Asia and 7 were born in

Europe. If 2 of the people are selected at random, find the probability that:

a they were both born in Asia

b at least 1 of them will be Australian-born

с both were born in Europe.

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  1. 17 April, 03:38
    0
    a. 22/425

    b. 368/425.

    c. 7/425.

    Step-by-step explanation:

    There are a total of 32+12+7 = 51 people in the group.

    a. Probability (First one is Asian) = 12/51 = 4/17.

    Probability (second one is Asian) = 11/50.

    So the probability that both are Asian is 4/17 * 11/50

    = 22/425.

    b. Prob (First is Australian) = 32/51

    Prob (Second is not Australian) = 19/50.

    Prob (first is Australian and Second is not) = 32/51 * 19/50.

    Prob (First is not Australian and the second is) = 19/51 * 32/50.

    Prob (Both are Australian) = 32/51 * 31/50)

    Prob (At least one is Australian = 32/51 * 19/50 + 19/51 * 32/50 + 32/51 * 31/50

    = 368/425.

    c. Prob (First choice born in Europe) = 7/51 and probability second was also born in Europe = 6/50

    So the answer is 7/51 * 6/50 = 7/425.
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