If I is the greatest of the definite integrals I 1-01 e - x cos 2 x dx - I 2-01 e - x 2cos 2 x dxI 3-01 e - x 2 dx - I 4-01 e - x 2-2 dx- thenA- I-I1B- I-I2C- I-I3D- I-I4

The correct option is D For 0 lt; x lt; 1, we have 1/2x^2 lt; x^2 lt; x ⇒ x^2 gt; x, so that e^ x^2 lt; e^ x, Hence ∫_0^1 e^ x^2 cos^2 x ...

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Byju's Answer

Standard XII

Mathematics

Property 4

If I is the g...

Question

If I is the greatest of the definite integrals
$I_{1} = \int_{0}^{1} e^{- x} c o s^{2} x d x, I_{2} = \int_{0}^{1} e^{- x^{2}} c o s^{2} x d x$
$I_{3} = \int_{0}^{1} e^{- x^{2}} d x, I_{4} = \int_{0}^{1} e^{\frac{- x^{2}}{2}} d x, t h e n$

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Solution

The correct option is D

For 0 < x < 1, we have $\frac{1}{2} x^{2} < x^{2} < x$
$\Rightarrow - x^{2} > - x, s o t h a t e^{- x^{2}} < e^{- x},$
$H e n c e \int_{0}^{1} e^{- x^{2}} c o s^{2} x d x > \int_{0}^{1} e^{- x} c o s^{2} x d x$
$A l s o c o s^{2} x \leq 1$
$T h e r e f o r e \int_{0}^{1} e^{- x^{2}} c o s^{2} x d x \leq \int_{0}^{1} e^{- x^{2}} d x < \int_{0}^{1} e^{\frac{- x^{2}}{2}} d x = I_{4}$
Hence $I_{4}$ is the greatest integral

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Similar questions

If I is the greatest of the definite integrals
$I_{1} = \int_{0}^{1} e^{- x} c o s^{2} x d x, I_{2} = \int_{0}^{1} e^{- x^{2}} c o s^{2} x d x$
$I_{3} = \int_{0}^{1} e^{- x^{2}} d x, I_{4} = \int_{0}^{1} e^{\frac{- x^{2}}{2}} d x, t h e n$

Q. Consider the integrals

I_{1} = \int_{0}^{1} e^{- x} c o s^{2} x d x

I_{2} = \int_{0}^{1} e^{- x^{2}} c o s^{2} x d x, I_{3} = \int_{0}^{1} e^{- x^{2}} d x

and

I_{4} = \int_{0}^{1} e^{- (1 / 2) x^{2}} d x

. The greatest of these integrals

I

Q. Assertion :Let

I_{1} = \int_{0}^{1} e^{- x} {cos}^{2} x d x

I_{2} = \int_{0}^{1} e^{- x^{2}} {cos}^{2} x d x

I_{3} = \int_{0}^{1} e^{- x^{2}} d x

I_{4} = \int_{0}^{1} e^{\frac{- x^{2}}{2}} d x

then greatest of these integrals is

I_{4}

Reason:

\int_{a}^{b} f (x) d x < \int_{a}^{b} g (x) \forall f (x) \geq g (x)

Consider the integrals $I_{1} = \int_{0}^{1} e^{- x} {cos}^{2} x d x, I_{2} = \int_{0}^{1} e^{- x^{2}} {cos}^{2} x d x, I_{3} = \int_{0}^{1} e^{- x} d x$ and $I_{4} = \int_{0}^{1} e^{- (1 / 2) x^{2}} d x$ . The greatest of these integrals is

Q. If

I_{1} = 1 \int 0 e^{- x} {cos}^{2} x d x

I_{2} = 1 \int 0 e^{- x^{2}} {cos}^{2} x d x

and

I_{3} = 1 \int 0 e^{- x^{3}} d x

; then :

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If I is the greatest of the definite integrals I1=∫10e−xcos2x dx, I2=∫10e−x2cos2 x dx I3=∫10e−x2dx, I4=∫10e−x22dx, then

The correct option is D For 0 < x < 1, we have 12x2<x2<x ⇒−x2>−x, so that e−x2<e−x, Hence ∫10e−x2 cos2 x dx>∫10e−xcos2x dx Also cos2 x ≤1 Therefore ∫10e−x2cos2 x dx≤∫10e−x2dx<∫10e−x22dx=I4 Hence I4 is the greatest integral

If I is the greatest of the definite integrals
$I_{1} = \int_{0}^{1} e^{- x} c o s^{2} x d x, I_{2} = \int_{0}^{1} e^{- x^{2}} c o s^{2} x d x$
$I_{3} = \int_{0}^{1} e^{- x^{2}} d x, I_{4} = \int_{0}^{1} e^{\frac{- x^{2}}{2}} d x, t h e n$