Question

If $${I_1} = \int\limits_0^1 {{2^{{x^2}}}} dx,\,{I_2} = \int\limits_0^1 {{2^{{x^3}}}} dx,\,{I_3} = \int\limits_1^2 {{2^{{x^2}}}} dx$$         and $${I_4} = \int\limits_1^2 {{2^{{x^3}}}} dx,$$    then-

A. $${I_2} > {I_1}$$
B. $${I_1} > {I_2}$$  
C. $${I_3} = {I_4}$$
D. $${I_3} > {I_4}$$
Answer :   $${I_1} > {I_2}$$
Solution :
$$\eqalign{ & {I_1} = \int\limits_0^1 {{2^{{x^2}}}} dx,\,{I_2} = \int\limits_0^1 {{2^{{x^3}}}} dx \cr & = {I_3} = \int\limits_0^1 {{2^{{x^2}}}} dx,\,{I_4} = \int\limits_0^1 {{2^{{x^3}}}} dx\,\forall \,0 < x < 1,\,{x^2} > {x^3} \cr & \Rightarrow \int\limits_0^1 {{2^{{x^2}}}} dx > \int\limits_0^1 {{2^{{x^3}}}} dx \cr & \Rightarrow {I_1} > {I_2} \cr} $$

Releted MCQ Question on
Calculus >> Definite Integration

Releted Question 1

The value of the definite integral $$\int\limits_0^1 {\left( {1 + {e^{ - {x^2}}}} \right)} \,dx$$     is-

A. $$ - 1$$
B. $$2$$
C. $$1 + {e^{ - 1}}$$
D. none of these
Releted Question 2

Let $$a,\,b,\,c$$   be non-zero real numbers such that $$\int\limits_0^1 {\left( {1 + {{\cos }^8}x} \right)\left( {a{x^2} + bx + c} \right)dx = } \int\limits_0^2 {\left( {1 + {{\cos }^8}x} \right)\left( {a{x^2} + bx + c} \right)dx.} $$
Then the quadratic equation $$a{x^2} + bx + c = 0$$     has-

A. no root in $$\left( {0,\,2} \right)$$
B. at least one root in $$\left( {0,\,2} \right)$$
C. a double root in $$\left( {0,\,2} \right)$$
D. two imaginary roots
Releted Question 3

The value of the integral $$\int\limits_0^{\frac{\pi }{2}} {\frac{{\sqrt {\cot \,x} }}{{\sqrt {\cot \,x} + \sqrt {\tan \,x} }}dx} $$     is-

A. $$\frac{\pi }{4}$$
B. $$\frac{\pi }{2}$$
C. $$\pi $$
D. none of these
Releted Question 4

For any integer $$n$$ the integral $$\int\limits_0^\pi {{e^{{{\cos }^2}x}}} {\cos ^3}\left( {2n + 1} \right)xdx$$     has the value-

A. $$\pi $$
B. $$1$$
C. $$0$$
D. none of these

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Definite Integration


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