The number of ways in which 10 boys can be divided into 2 groups of 5, such that two tallest boys are in two different groups, is equal to

Question

The number of ways in which 10 boys can be divided into 2 groups of 5, such that two tallest boys are in two different groups, is equal to (A) 70 (B) 35 (C) 252 (D) 126

Tardigrade Admin · Accepted Answer

Excluding the 2 tallest boys, we can divide the 8 boys into 2 groups of 4 each by (8 !/4 ! 4 ! 2 !) ways. The tallest boys can be assigned to the groups in 2 ways. The desired number of ways is (8 !/4 ! 4 ! 2 !)× 2!=(8 × 7 × 6 × 5/4 × 3 × 2)=70

Q. The number of ways in which $10$ boys can be divided into $2$ groups of $5,$ such that two tallest boys are in two different groups, is equal to

$70$

$35$

$252$

$126$

Q. The number of ways in which 10 boys can be divided into 2 groups of 5, such that two tallest boys are in two different groups, is equal to

70

35

252

126

Excluding the 2 tallest boys, we can divide the 8 boys into 2 groups of 4 each by 4!4!2!8!​ ways. The tallest boys can be assigned to the groups in 2 ways. The desired number of ways is 4!4!2!8!​×2!=4×3×28×7×6×5​=70

Q. The number of ways in which $10$ boys can be divided into $2$ groups of $5,$ such that two tallest boys are in two different groups, is equal to

$70$

$35$

$252$

$126$