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Question

A bag contains some white and black balls, all combinations being equally likely. The total number of balls in the bag is 12. Four balls are drawn at random from the bag without replacement.
List - IList -II(I)probability that all the four balls are black(P)1433(II)If the bag contains 10 black and 2 white balls,(Q)15then the probability that all four balls are black(III) If all the 4 balls are black then the probability,(R)70429that the bag contains 10 black balls(IV)Probability that two balls are black and two are(S)13165 white is(T)13(U)29

Which of the following is the only CORRECT combination?

A
(I)(P)
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B
(II)(Q)
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C
(III)(R)
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D
(IV)(S)
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Solution

The correct option is C (III)(R)
Possible combinations:
0 black and 12 white
1 black and 11 white
: : : : : :
11 black and 1 white
12 black and 0 white
So, the total number of the combination is 13.

P(any combination)=P(Ei)=113

P(I)=113(4C4+5C4+6C4+7C4+8C4+9C4+10C4+11C4+12C412C4)
=1×13C513×12C4=15

P(II)=10C412C4=1433

P(III)=P(Ei)×P(II)P(I)=70429

P(IV)=2(2C2×10C2+3C2×9C2+4C2×8C2+5C2×7C2)+6C2×6C213×12C4 =15

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