Math, asked by monikanonu4, 7 months ago

A two digit code from digits 1,2,0,3,4,8 for a lock have_________ number of possible arrangements.​

Answers

Answered by prem4324v
1

1, 2, 3, 4, 5, 6, 7 : 7 digits in all and we have to use 4 digits

(a)   7  P  4  =  3! 7!  =7×6×5×4=840.

(b) Numbers greater than 3400 will have, 4 or 5 or 6 or 7 in the first place i.e. there are 4 ways of filling the first place. (i.e. 4 ways) Having filled the first place say by 4 we have to choose 3 digits out of the remaining 6 and the number will be 6 P  3 =  3! 6! =6×5×4=120

Therefore total of such numbers by fundamental theorem will be

4×120=480.                     ...(1)

Numbers greater than 3400 can be those which have 34, 35, 36, 37 in the first two places (i.e. 4 ways).

Having filled up 34 in the first two places we will have to choose 2 more out of remaining 5 and the number will be 5  P  2 ​ =  3! 5! ​ =5×4=20

Therefore total as above will be

20×4=80.                 ...(2)

Hence all the numbers greater than 3400 will be

480 + 80 = 560, by (1) and (2).

(c) The numbers will be divisible by 2 if the last digit is divisible by 2 which can be done in 3 ways by fixing 2 or 4 or 6 and the remaining 3 places can be filled up out of remaining 6 digits in   6  P  3

​ ways.

Hence the required no.

3×x  6  P  3

​ =3×120=360.

(d) A number will be divisible by 25 if the last two digits are divisible by 25 and this can be done in two ways for either 25 or 75 can be there and remaining two places out of 5 digits can be filled in   5  P  2 ​ways.

Hence the required number

=2×  5  P  2  =2×20=40.

(e) A number is divisible by 4 if the last two digits are divisible by 4 which can be done in 10, ways (12, 16, 24, 32, 36, 52, 56, 64, 72, 76).

Hence number = 10×  5  P  2

​  

=10×20=200.

Answered by toufiq75
0

Answer:

15

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