Let fx - x-1 - x71-7 and gx - fo fo fo fo fo fo fx- then - x5 gxdx is

F(f(x)) = x/(1 + x^7)^1/7/(1 + (x/(1+x^7)^1/7)^7)^1/7 =x/(1 + 2x^7)^1/7 So f_0 f_0 f_0 f_0 f_0 f_0 f(x) = x/(1 + 7x^7)^1/7 So I =∫x^6/(1 + 7x^7)^1/7dx Let 1 + 7 ...

You visited us 1 times! Enjoying our articles? Unlock Full Access!

Byju's Answer

Standard XII

Mathematics

Reduction Formulae

Let fx = x/1 ...

Question

Let $f (x) = \frac{x}{(1 + x^{7})^{\frac{1}{7}}}$ and $g (x) = (f o f o f o f o f o f o f) (x), then \int x^{5} g (x) d x$ is

\frac{1}{42} (1 + 6 x^{7})^{6 / 7} + c

No worries! We‘ve got your back. Try BYJU‘S free classes today!

\frac{1}{35} (1 + 7 x^{7})^{5 / 7} + c

No worries! We‘ve got your back. Try BYJU‘S free classes today!

\frac{1}{35} (1 + 5 x^{7})^{5 / 7} + c

No worries! We‘ve got your back. Try BYJU‘S free classes today!

\frac{1}{42} (1 + 7 x^{7})^{6 / 7} + c

Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses

Open in App

Solution

The correct option is D $\frac{1}{42} (1 + 7 x^{7})^{6 / 7} + c$
$f (f (x)) = \frac{\frac{x}{(1 + x^{7})^{1 / 7}}}{(1 + (\frac{x}{(1 + x^{7})^{1 / 7}})^{7})^{1 / 7}} = \frac{x}{(1 + 2 x^{7})^{1 / 7}}$
So $f_{0} f_{0} f_{0} f_{0} f_{0} f_{0} f (x) = \frac{x}{(1 + 7 x^{7})^{1 / 7}}$
So $I = \int \frac{x^{6}}{(1 + 7 x^{7})^{1 / 7}} d x$
$L e t 1 + 7 x^{7} = t \Rightarrow 49 x^{6} d x = d t I = \int \frac{d t}{49 t^{1 / 7}} = \frac{1}{49} \frac{t^{6 / 7}}{6 / 7} + c = \frac{1}{42} (1 + 7 x^{7})^{6 / 7} + c$

Suggest Corrections

Similar questions

Q. Let

f (x) = \frac{x}{(1 + x^{7})^{\frac{1}{7}}}

and

g (x) = (f o f o f o f o f o f o f) (x), then \int x^{5} g (x) d x

Q. Let

f (x) = e^{x^{2} + | x |}

and

g (x) = {(4 {cos}^{4} x - 2 cos 2 x - \frac{1}{2} cos 4 x - x^{7})}^{1 / 7} .

If domain of

f (x), g (x)

[a, \infty), R

respectively and range of

f (x), g (x)

[b, \infty), R

respectively, where

a = {sin}^{- 1} (sin 3) + {sin}^{- 1} (sin 4) + {sin}^{- 1} (sin 5),

then which of the following is (are) CORRECT ?

Let f(x) = 2x-5 and g(x) = 7-2x, Then $| f (x) + g (x) | = | f (x) | + | g (x) |$ if and only if

Q. Let

f (x) = | x - 2 | + | x - 3 | + | x - 4 |

and

g (x) = f (x + 1)

. Then

Q. Assertion :Let

f (x) = (x + 1)^{2} - 1 \forall x \geq - 1

and

g (x) = - 1 + \sqrt{x + 1}

then number of solutions of the equation

g (x) = f (x)

is two Reason:

f (x)

and

g (x)

are inverse of each other.

Join BYJU'S Learning Program

Let f(x)=x(1+x7)17 and g(x)=(fofofofofofof)(x), then ∫x5g(x)dx is

The correct option is D 142(1+7x7)6/7+cf(f(x))=x(1+x7)1/7(1+(x(1+x7)1/7)7)1/7=x(1+2x7)1/7 So f0f0f0f0f0f0f(x)=x(1+7x7)1/7 So I=∫x6(1+7x7)1/7dx Let 1+7x7=t⇒49x6dx=dtI=∫dt49 t1/7=149t6/76/7+c=142(1+7x7)6/7+c

Let $f (x) = \frac{x}{(1 + x^{7})^{\frac{1}{7}}}$ and $g (x) = (f o f o f o f o f o f o f) (x), then \int x^{5} g (x) d x$ is