How many ways can you arrange all the letters from the word MATHEMATICS such that all the vowels are never together?

In how many different ways can the letters of the word 'MATHEMATICS' be arranged so that the vowels always come together?

Answer: Option C

Explanation:

In the word 'MATHEMATICS', we treat the vowels AEAI as one letter.

Thus, we have MTHMTCS (AEAI).

Now, we have to arrange 8 letters, out of which M occurs twice, T occurs twice and the rest are different.

Number of ways of arranging these letters =	8!	= 10080.
(2!)(2!)

Now, AEAI has 4 letters in which A occurs 2 times and the rest are different.

After considering vowels as 1 set, remaning consonents and the vowel set => M+T+H+M+T+C+S+(AEAI) => 8 letters {because we hav to consider that the vowels always come together}.

I hope you will understand my answer.

The formula vich v used in this qestion is
= n!/(P1!)(P2!)....(Pr!) where n is the no. of letters nd P is the no. of occurrence of each letter.

8! meanx (8*7*6*5*4*3*2*1) which gives us 40320 similarly (2!)(2!) gives us 4. So dividing 40320/4 we get 1008.

Hope you understand.

To find out the number of ways to arrange the so that two Ms do not come together.!

Two Ms don't come to gether = Total number of ways - two Ms come together.

Total number ways of arranging MATHEMATICS letters = 11!/(2!*2!*2!) = 4989600.

Two Ms come together = 10!/(2!*2!) = 907200.

Two Ms don't come together = 4989600-907200 = 4082400.

And than the answer was = 10080*2*1 = 20160.

Thus, we have MTHMTCS (AEAI).

7! * 4! => 5040 * 24 => 120960.

Make it simple!

We should notice that in the word "mathematics'", m and t occurred twice 8!/2!2!.

Now, AEAI has 4 letters in which A occurs twice.

So, no of ways of arranging these letters = 4!/2!=12.
Required no of words= 1260*12=15120.
So answer is none of these.

# The consonants MTHMTCS are considered as 7 letters.

# The four vowels AEAI are considered as one letter since they are supposed to be arranged all together.

# The 7 consonant + 1 group of vowels= 8 letters.

# If there are no repeated letters in these 8 letters, the total ways of arrangements would be 8 != 40320.

# But in the 8 letters we set up above we know M and T are happened to occur twice. Since a letter repeated twice has two arrangements M and T add up to have 4 repeated arrangements. These 4 repeated arrangements will divide the total 40320 arrangements in to 4. Hence, 40320÷4= 10080.

# The AEAI letter will form (4!) 24 arrangements if there is no letter repeated. But A is repeated twice which divide the 24 arrangements by 2. Hence, we do have 12. arrangements.

# Finally the total number of ways to arrange is፡.

10080*12=120960 ways.

In the arrangement of letters of word PENCIL, P and C next to each other means P and C always come together and only one possible arrangement of P and C letter that is PC, CP is wrong. Now think of available letters E, N, I, L, [PC].

So possible arrangement = 5! => 120.

Solution:-

VOWEL FROM THE WORD = A A E I -------------------------> (1)
REMAINING LETTERS IN THE WORD = M T H M T C S ------->(2)

CONSIDER [ A A E I ] M T H M T C S = 1 + 7 = 8! divided by 2! 2! [becus we have M M and T T].

FROM ------->A A E I we get 4! and divided 2! [becus we have two A A].

8! 4! DIVIDED BY 2! 2! 2! =======> 120960.