- Permutation and Combination - important notes
- Permutation and Combination - General Questions
1. | In how many different ways can the letters of the word 'LEADING' be arranged in such a way that the vowels always come together? |
2. | From a group of 7 men and 6 women, five persons are to be selected to form a committee so that at least 3 men are there on the committee. In how many ways can it be done? |
3. | In how many different ways can the letters of the word 'CORPORATION' be arranged so that the vowels always come together? |
4. | In how many ways can the letters of the word 'LEADER' be arranged? |
5. | Out of 7 consonants and 4 vowels, how many words of 3 consonants and 2 vowels can be formed? |
Answer
Verified
Hint: To solve this problem we have to know about the concept of permutations and combinations. But here a simple concept is used. In any given word, the number of ways we can arrange the word by jumbling the letters is the number of letters present in the word factorial. Here factorial of any number is the product of that number and all the numbers less than that number till 1.
$ \Rightarrow n! = n[n - 1][n - 2].......1$
Complete step by step answer:
Given the word
TRAINER, we have to arrange the letters of the word in such a way that all the vowels in the word TRAINER should be together.
The number of vowels in the word TRAINER are = 3 vowels.
The three vowels in the word TRAINER are A, I, and E.
Now these three vowels should always be together and these vowels can be in any order, but they should be together.
Here the three vowels AIE can be arranged in 3 factorial ways, as there are 3 vowels, as given below:
The number of ways the 3
vowels AIE can be arranged is = $3!$
Now arranging the consonants other than the vowels is given by:
As the left out letters in the word TRAINER are TRNR.
The total no. of consonants left out are = 4 consonants.
Now these 4 consonants can be arranged in the following way:
As in the 4 letters TRNR, the letter R is repeated for 2 times, hence the letters TRNR can be arranged in :
$ \Rightarrow \dfrac{{4!}}{{2!}}$
But the letters TRNR are arranged along with the vowels A,I,E,
which should be together always but in any order.
Hence we consider the three vowels as a single letter, now TRNR along with AIE can be arranged in:
$ \Rightarrow \dfrac{{5!}}{{2!}}$
But here the vowels can be arranged in $3!$ as already discussed before.
Thus the word TRAINER can be arranged so that the vowels always come together are given below:
$ \Rightarrow \dfrac{{5!}}{{2!}} \times 3! = \dfrac{{120 \times 6}}{2}$
$ \Rightarrow 360$
The number of ways the word TRAINER can be arranged so that the vowels always come together are 360.
Note: Here while solving such kind of problems if there is any word of $n$ letters and a letter is repeating for $r$ times in it, then it can be arranged in $\dfrac{{n!}}{{r!}}$ number of ways. If there are many letters repeating for a distinct number of times, such as a word of $n$ letters and ${r_1}$ repeated items, ${r_2}$ repeated items,…….${r_k}$ repeated items, then it is arranged in $\dfrac{{n!}}{{{r_1}!{r_2}!......{r_k}!}}$ number of ways.
1] In what ways the letters of the word "RUMOUR" can be arranged?
- 180
- 150
- 200
- 230
Answer: D
Answer with the explanation:
The word RUMOUR consists of 6 words in which R and U are repeated twice.
Therefore, the required number of permutations =
Or,
Hence, 180 words can be formed by arranging the word RUMOUR.
2] In what ways the letters of the word "PUZZLE" can be arranged to form the different new words so that the vowels always come together?
- 280
- 450
- 630
- 120
Answer: D
Answer with the explanation:
The word PUZZLE has 6 different letters.
As per the question, the vowels should always come together.
Now, let the vowels UE as a single entity.
Therefore, the number of letters is 5 [PZZL = 4 + UE = 1]
Since the total number of letters = 4+1 = 5
So the arrangement would be in
5P5 =
Note: we know that 0! = 1
Now, the vowels UE can be arranged in 2 different ways, i.e., 2P2 = 2! = 2*1 = 2 ways
Hence, the new words, which can be formed after rearranging the letters = 120 *2 = 240
As we known z is occurring twice in the word ‘PUZZLE’ so we will divide the 240 by 2.
So, the no. of permutation will be = 240/2 = 120
3] In what ways can a group of 6 boys and 2 girls be made out of the total of 7 boys and 3 girls?
- 50
- 120
- 21
- 20
Answer: C
Answer with the explanation:
We know that nCr = nC[n-r]
The combination of 6 boys out of 7 and 2 girls out of 3 can be represented as 7C6 + 3C2
Therefore, the required number of ways = 7C6 * 3C2 = 7C[7-6] * 3C[3-2] =
Hence, in 21 ways the group of 6 boys and 2 girls can be made.
4] Out of a group of 7 boys and 6 girls, five boys are selected to form a team so that at least 3 boys are there on the team. In how many ways can it be done?
- 645
- 734
- 756
- 612
Answer: C
Answer with the explanation:
We may have 5 men only, 4 men and 1 woman, and 3 men and 2 women in the committee.
So, the combination will be
as we know that
nCr=
So, [7C3 * 6C2] + [7C4 * 6C1] + [7C5]
Or,
Or, 525 +210+21 = 756
So, there are 756 ways to form a committee.
5] A box contains 2 red balls, 3 black balls, and 4 white balls. Find the number of ways by which 3 balls can be drawn from the box in which at least 1 black ball should be present.
- 64
- 48
- 32
- 96
Answer: A
Answer with the explanation:
The possible combination could be [1 black ball and 2 non-black balls], [2 black balls and 1 non- black ball], and [only 3 black balls].
Therefore the
required number of combinations = [3C1 * 6C2] + [3C2 * 6C1] + [3C3]
r,
Permutation and Combination Concepts