Short Question 7 & 8

Posted on May 17, 2020 by Myhometuition

Question 7:
Six members of a committee of a school are to be selected from 6 male teachers, 4 female teachers and a male principal. Find the number of different committees that can be formed if
(a) the principal is the chairman of the committee,
(b) there are exactly 2 females in the committee,
(c) there are not more than 4 males in the committee.

Solution:
(a)
If the principal is the chairman of the committee, the remaining number of committee is 5 members.
Hence, the number of different committees that can be formed from the remaining 6 male teachers and 4 female teachers

\begin{array}{l} =^{10} C_{5} \\ = 252 \end{array}

(b)

\begin{array}{l} Exactly 2 females in the committee \\ =^{4} C_{2} \times^{7} C_{4} \\ = 210 \end{array}

(c)

\begin{array}{l} There are not more than 4 males in the committee \\ = 4 males 2 females + 3 males 3 females + 2 males 4 females \\ =^{7} C_{4} \times^{4} C_{2} +^{7} C_{3} \times^{4} C_{3} +^{7} C_{2} \times^{4} C_{4} \\ = 210 + 140 + 21 \\ = 371 \end{array}

Question 8:

The diagram below shows five cards of different letters.

R E A C T

(a) Calculate the number of arrangements, in a row, of all the cards.

(b) Calculate the number of these arrangements in which the letters E and A are side by side.

Solution:
(a) Number of arrangements = 5! = 120

(b)
Step 1
If the letters ‘E ’ and ‘A’ have to be placed side by side, they will be considered as one item.
Together with the letters ‘R ’, ‘C ’ and ‘T ’, there are altogether 4 items.

EA R C T

Number of arrangements = 4!

Step 2

The letters ‘E ’ and ‘A ’ can also be arranged among themselves in their group.
Number of arrangements = 2!

Hence, number of arrangements of all the letters of the word ‘REACT’ in which the letters E and A have to be side by side
= 4! × 2!
= 24 × 2
= 48