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MATHEMATICAL INDUCTION
OBJECTIVE PROBLEMS
1.
2.
For all n N,3.52n +1 + 23n +1 is divisible by
1) 19
2) 17
3) 23
4) Any odd integer
For all +ve integral values of n, 49n + 16n 1 is divisible y
1) 64
3.
3) 16
4) 43
For all n N,10n + 3, 4n + 2 + 5 is divisible by
1) 23
4.
2) 8
2) 3
3) 9
4) 207
The number a n bn (a, b are distinct rational numbers and ( n N ) is always divisible
by
1) a b
5.
2) a + b
3) 2a-b
4) a-2b
The number a n + b n is divisible by when n is an odd +ve integer but not when n is an
even +ve integer.
1) 1) a-b 2) a+b
6.
4) 2a+b
1
1
1
+
+
+ to n terms =
1.4 4.7 7.10
1) 1/5n-1
7.
3) 2a-b
2) 1/n+4 3) n/3n+1
4) n/5n-1
49n + 16n + k is divisible by 64 for n N . Then the numerically least -ve integral value of
k is
1_-2
8.
2)-1
3) -3
4) -4
1.2.3+2.3.4+3.4.5+------- to n terms =
1)
( n + 1)( n + 2 )( n + 3)
2)
( n + 2 )( n 2 )( n 3)( n + 3)
3)
4
4
n ( n + 1)( n + 2 )( n + 3)
4
4) None
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9.
For n N, (1/ 5 ) n 5 + (1/ 3) n 3 + ( 7 / 15) n is
1) An integer
2) A natural number
3) a +ve fraction
4) None
10. The nth term of the series 4+14+30+52+80+114+----- is
1) 5n-1
2
2) 2n + 2n
2
3) 3n + n
2
4) 2n + 2
11. Sum of n terms of the series 13 + 33 + 53 + is
1)
n 2 ( n 2 1)
2)
n 2 ( 2n 2 1)
3)
n 2 ( 2n 2 + 1)
4)
n 2 ( 2n 2 + 1)
12. If 1+5+12+22+35+------- to n terms =
1)
n ( 4n 1)
3
2)
n ( 3n 1)
2
3)
n ( 3n + 1)
2
4)
n ( 4n + 1)
3
n 2 ( n + 1) th
, n term of L.H.S. is
2
13. 1/3.5+1/5.7+1/7.9+........ to n terms =
1)
3)
n
3 ( 2n + 3)
1
( n + 2 )( n + 4 )
2)
n
2n + 3
4) none
14. 13 + 23 + 33 + ...... + 1003 = k 2 then k =
1) 10100 2) 5000
3) 5050
4) 1010
15. 102n 1 + 1 for all n N is divisible by
1) 2
2) 3
3) 7
4) 11
16. Then nth term of the series 3+7+13+21+..... is
1) 4n-1
2
2) n + 2n
2
3) n + n + 1
2
4) n + 2
17. 2.3+3.4+4.5+........ to n terms =
1)
n ( n 2 + 6n + 14 )
9
2)
n ( n 2 6n + 11)
6
3)
n ( n 2 + 6n + 11)
3
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4) None
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18.
(1
1)
3)
+ 1) + ( 2 2 + 2 ) + ( 32 + 3) + ... + ( n 2 + n ) =
( n + 1)( n + 2 )
2)
3
n ( n + 1)( n + 2 )
2
n ( n + 1)( n + 2 )
3
4) None
19. 1+3+7+15+....... to n terms =
n +1
1) 2 + n 2
2
2) n + n 2
n
3) 2 1
4) None
20. 2+8+14+..... to n terms =
1) 3n-1
2) 4n-2
3) 3n n
2
4)
2 ( 4n 2 1)
3
21. For all odd positive integers n, number n ( n 2 1) is divisible by
1) 3
2) 4
3) 6
4) 24
22. 1.3+3.5+5.7+......+ to n term =
1)
n ( 4n 2 + 6n 1)
3
2
3) n + n + 1
2)
4n 2 + 6n 1
3
4) None
2
23. If the sum to n terms of an A.P is 4n 3n , then the nth term of the A.P. is
5n 1
1)
4
8n 7
3n 2 2
2)
3)
4
4
4) None
24. If 3+5+9+17+33+........ to n terms = 2n +1 + n 2 , then nth term of L.H.S. is
1) 3n 1
25. If 1 +
2) 2n + 1 3) 2n + 1
4) 3n-1
1
1
1
+
+ .... +
=
1+ 2 1+ 2 + 3
1 + 2 + .... + n
1) 1
2) 2
3) 3
Kn
for all n N , then K =
n +1
4)
26. For n N , cos , cos 2, cos 4 ......cos 2n 1 =
1)
sin 2n
2sin
2)
sin 2n
2cos
3)
sin 2n
2sin
4)
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cos 2n
2n cos
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27.
72n + 3n 1.23n 3 is divisible by
1) 24
2) 25
3) 9
4) 13
3
2
28. If n N and 1.3+3.5+5.7+....+(2n-1)(2n+1) = 4n + 6n n , then K =
1)1
29.
2) 2
3) 3
4) 5
1 1 1
1
1 1 1 ...... 1 ( n 3) =
2 3 4
n
1)
1
n2
2)
1
n3
3)
2
n
4)
1
n
30. If n N . Then n ( n 2 1) is divisible by
1) 6
2) 16
3) 36
4) 24
31. The product of consecutive integers is divisible by
1) n
n
2) n
3) n!
4) (n-1)
32. If P(n) is a statement such that truth of P(n) the truth of P(n+1) for n N , then P(n)
is true
1) n
2) For all n>1
3) For all n >m, m is some fixed positive integer
4) Nothing can be said
33. If P(n) :2n<n !, n N , then P(n) is true for
1) All n
2) all n > 2
3) all n > 3
4) None
34. A student was asked to prove a statement by induction. He proved (i) P(5) is true and
(iii) truth of P(n) truth of P(n+1), n N . On the basis of this, he could conclude that
P(n) is true.
1) For no n
2) For all n 5
3) For all n
4) None of these
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MATHEMATICAL INDUCTION
HINTS AND SOLUTIONS
1.
(2)
When n = 1, 3 52n +1 + 23n +1 = 3 125 + 16 = 391
n = 2,3.52n +1 + 23n +1 = 9375 + 128 = 9503
H.C.F. of 391, 9503, is 17.
2. (1)
When n = 1, 49n + 16n 1 = 49 + 16 1= 64
n = 2, 49n + 16n 1 = 492 + 16 2 1
= 2401 + 32 1 = 2432,
3. (3)
When n = 1, 10n + 3.4n+2 + 5 = 207,
n = 2,102 + 3(4) 4 + 5
= 100 + 768 + 5 = 873
HCF of 207, 873 is 9.
4. (1)
f (a) = a n b n , n N f (b) = (b) n b n = 0
a n b n is divisible by a b.
5. (1)
f (a) = a n + b n , n N
f ( b) = ( b)n + b n = 0 When n is an odd +ve integer and not equal to zero when n is an even
+ve integer.
divisible by a + b
6. (2)
1
1
1
+
+
+ ... to n terms
1 4 4 7 7 10
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=
1
1
1
1
+
+
+ ... +
1 4 4 7 7 10
(3n 2)(3n + 1)
1/ 3
1/ 3
=
3n 2 3n + 1
1 1 1 1 1 1 1
1
1
+ + + ......... +
3 1 4 4 7 7 10
3n 2 3n + 1
1
1
n
= 1
=
.
3 3n + 1 3n + 1
7. (3)
49n + 16n + k is divisible by 64 and k is the least ve integer.
49 + 16 + k is divisible by 64
65 + k is divisible by 64
k = 1.
8. (2)
Sn = 1 2 3 + 2 3 4 + 3 4 5 + ... to n terms
Put n = 1, S1 = 1 2 3 = 6
Put n = 2, S2 = 6 + 24 = 30
When n = 1,
n(n + 1)(n + 2)(n + 3) 1 2 3 4
=
= 6 = S1 and
4
4
When n = 2,
n(n + 1)(n + 2)(n + 3) 2 3 4 5
=
= 30 = S2 .
4
4
9. (2)
1
5
1
3
For n N, P(n) = n 5 + n 3 +
7
n
15
P(1) = 1/ 5 + 1/ 3 + 7 /15 = 1 ,
P(2) = 32 / 5 + 8 / 3 + 14 /15
=
96 + 40 + 14
= 10,......
15
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10. (3)
tn = nth term = 3n2 + n
When n = 1 tn = 4,
When n = 2, tn = 14,
n = 3, tn = 30 etc.
11. (2)
In(2) : S1 = 12 (2.12 1) = 1 = 13
S2 = 22 (2.22 1) = 28 = 13 + 33.
12. (2)
Sn =
n 2 (n + 1)
2
(n 1) 2 (n 1 + 1) (n 1) 2 n
Sn 1 =
=
2
2
nth term = Sn Sn 1
(n 1)2 n (n 1)2 (n)
2
2
n[n 2 + n n 2 + 2n 1]
2
n(3n + 1)
=
.
2
=
13. (1)
In(i) : S1 =
S2 =
=
1
1
=
3(2 1 + 3) 3.5
2
2
=
3(2 2 + 3) 3 7
7+3
1
1
=
+
.
355 35 5 7
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14. (3)
2
100
n(n + 1)
13 + 23 + 33 + ... + 1003 = n 2 =
where n = 100.
2
n =1
2
100 101
2
2
=
= (5050) = K
2
K = 5050
15. (4)
102n 1 + 1, n = 1 11
n = 2 1001...
102n 1 + 1 is divisible by 11.
HCF of 11, 1001 is 11.
16. (3)
In(3) n2 + n + 1, put n = 1 3
Put n = 2 7
17. (3)
Take
18
n(n 2 + 6n + 11)
, n=1 = 6 = 2 3
3
3
2(27)
= 2.3 + 3.4
3
n = 3 38 = 2.3 + 3.4 + 4.5 etc.
n =2
18. (2)
nth term = n2 + n
Sn = (n 2 + n) = n 2 + n
=
n(n + 1)(2n + 1) n(n + 1)
+
6
2
n(n + 1) 2n + 1 n(n + 1)(n + 2)
+ 1 =
.
2 3
3
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19. (4)
Sn = 1 + 3 + 7 + 15 + ... to n terms
S1 = 1,S2 = 1 + 3 = 4,S3 = 1 + 3 + 7 = 11,...
n = 1 (1) is not true.
n = 2 (2) is true, (3) is not true.
n = 3 n2 + n 2 = 9 + 3 2 = 10 S2
(2) is not true.
20. (3)
3n2 n
n=12
n = 2 10,
21. (4)
n(n2 1), n = 3 3(8) = 24
n = 5 5(24), n = 7 7(48)
Divisible by 24
22. (1)
n(4n 2 + 6n 1)
, n = 1 1.3 = s1
3
n = 2 18 = 1.3 + 3.5 = s2
23. (2)
Sn =
4n 2 3n
,
4
tn = nth term = Sn Sn 1
=
4n 2 3n 4(n 1)2 3(n 1)
4
4
1 [4{n
=
4
(n 1)2 }3{n (n 1)}]
1 (8n 7)
=
4
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24. (3)
Sn = 2n + 1 + n 2
Sn 1 = 2n + n 1 2
nth term = Sn Sn 1
= 2 2n + n 2 2n n + 1 + 2 = 2n + 1.
25. (2)
Put n = 2.
Then 1 +
1
2K
=
K=2
1+ 2
3
26. (3)
cos cos 21 cos 22 ......cos 2n 1 =
1
sin 21 cos 21 cos 22 ...cos 2n 1
2sin
(2sin 22 cos 22 ...cos 2n 1
2 sin
2
1
sin 2n .
2 sin
n
(Or) Put n = 1.
L.H.S. cos 20 = cos
sin 21
= cos
2sin
R.H.S. =
Put n = 2.
L.H.S. cos cos 21
R.H.S. =
=4
sin 22 2sin 2 cos 2
=
4sin
22 sin
sin cos cos 2
= cos cos 2
4sin
27. (2)
n = 1 G.E. 72 + 30 . 20 = 50
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n = 2 G.E. = 74 + 3.23 = 2425
G.C.D of 50, 2425 is 25.
28. (2)
n = 2 :1.3 + 3.5 =
18 =
32 + 24 2
K
54
K =3
K
29. (4)
1 1 1
1 1 ... 1
2 3 n
1 2 3 n 1 1
= ...
=
2 3 4
n
n
30. (1)
n(n2 1) = (n 1)n(n + 1)
= products of 3 consecutive integers divisible by 3 = 6 .
31. (3)
The product of three consecutive integers are (n 1) n (n + 1), it is divisible by 3.
The product of four consecutive integers are (n 1) n (n + 1)(n + 2), it is divisible by 4.
the product of n consecutive integers is divisible by n.
32. (4)
We cannot set anything above the truth of P(n), n N since truth of P(1) is not given.
33. (3)
P(1), P(2), P(3) are not true.
P(4) is true. Also, 2m < m
2 2m < 2 m
2m+1 (m + 1) m for m 1
2m+1 (m + 1), for m 1.
34. (2)
By the principle of mathematical induction P (n) is true for all n 5.
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