Box I contain three cards bearing numbers 1,2,3; box II contains five cards bearing numbers 1,2,3,4,5; and box III contains seven cards bearing numbers 1,2,3,4,5,6,7. A card is drawn from each of the boxes. Let $x_{i}$ be the number on the card drawn from the $i^{t h}$ box $i = 1, 2, 3.$

The probability that $x_{1} + x_{2} + x_{3}$ is odd, is ?

$\frac{29}{105}$

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$\frac{53}{105}$

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$\frac{57}{105}$

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$\frac{1}{2}$

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Solution

The correct option is B
$\frac{53}{105}$

$P r o b a b i l i t y = \frac{N u m b e r o f f a v o u r a b l e o u t c o m e s}{N u m b e r o f t o t a l o u t c o m e s}$
As, $x_{1} + x_{2} + x_{3}$ is odd.
So, all may be odd or one of them is odd and other two are even.
$∴$ Required probability
$= \frac{^{2} C_{1} \times^{3} C_{1} \times^{4} C_{1} +^{2} C_{1} \times^{2} C_{1} \times^{3} C_{1} +^{1} C_{1} \times^{3} C_{1} \times^{3} C_{1} +^{1} C_{1} \times^{2} C_{1} \times^{4} C_{1}}{^{3} C_{1} \times^{5} C_{1} \times^{7} C_{1}} = \frac{24 + 12 + 9 + 8}{105} = \frac{53}{105}$

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Box I contain three cards bearing numbers 1,2,3; box II contains five cards bearing numbers 1,2,3,4,5; and box III contains seven cards bearing numbers 1,2,3,4,5,6,7. A card is drawn from each of the boxes. Let $x_{i}$ be the number on the card drawn from the $i^{t h}$ box $i = 1, 2, 3.$

The probability that $x_{1}, x_{2}$ and $x_{3}$ are in arithmetic progression, is ?