(III)Area of
Area ofMZN
ZMW
(R)5
4(IV) (S)21
5
(T) 2 6(U)10
3- Which of the following is the only correct
combination?
(a) (II) - (T) (b) (I) - (S)
(c) (II) - (Q) (d) (I) - (U)
18.Which of the following is the only Incorrect
combination?
(a) (IV) - (S) (b) (I) - (P)
(c) (III) - (R) (d) (IV) - (U)
SECTION-I- (a,b,d) 2. (a,d) 3. (b,d) 4. (a,b,c)
- (a,c) 6. (a,b) 7. (a,b,c) 8. (a,c,d)
SECTION-II- (6.20) 10. (0.00) 11. (18.00)
- (30.00) 13. (0.50) 14. (422)
SECTION-III- d 16. c 17. c 18. a
SECTION-ISECTION-IISECTION-IIISECTION-I1.Sol: We can evaluate
SECTION-I1.Sol: F x explicitly. But for
the options (A) to (C), we shall be dealing
with F x' which equals f x by the
Fundamental Theorem of Calculus.
Thus F x' has three zeros, 1, 2 and 5. For
x 1 , all the three factors x x1, 2 , and
x 5 are negative and so F x' ^0. Forx1,2 F x' 0 as two factors are
negative and one positive. So, F changes from
decreasing to increasing at x 1. Hence there
is a local minimum at x 1. By a similar
reasoning, there is a local maximum at x 2.
So, both (A) and (B) are true.
For x2,5 F x' 0 as two factors are
positive and the third negative. For x 5 ,F x' 0. So there is a local minimum as 5.
As there is already a local minimum atx 1 ,
(C) is false.
For (D), suppose there is some b0,5suchthat F b 0. Since F0 0 too, by Rolle’sstheorem there is somec b0, such thatF c' 0 , i.e. c c c (^1) (^2) 5 0. But
c 5 and so c 5 0. So c must be either 1
or 2. However, this is not a sufficient ground
to prove (D). So here we actually calculate
F x by integrating f. Since t t (^1) (^2)
t ^5 t t t^3 8 17 10^2 ,
F x comes out as
0 ^3 8 17 10^2
x
F x t t t dt
4(^8317210)
4 3 2
x
x x x
On the interval [0,5], F x can attain its
maximum either at 2 or at one of the end points
0 and 5. Since F is decreasing on [2,5] we
need not consider the end point 5. As between
0 and 2, F0 0 while
64
2 4 34
3
F
64
20 18 0
3
.
So, the maximum of F x on [0,5] is
F0 0. Therefore there cannot be any