Download App

STD 12 - 7.1 inderfinite integral — Mathematics STD 12 Science — Question

CBSE BoardEnglish MediumSTD 12 ScienceMathematicsSTD 12 - 7.1 inderfinite integral1 Mark
MCQ
The integral $\int {\frac{{dx}}{{{{(x + 1)}^{\frac{3}{4}}}{{(x - 2)}^{\frac{5}{4}}}}}} $ is equal to
  • A
    $ - \frac{4}{3}{\left( {\frac{{x + 1}}{{x - 2}}} \right)^{\frac{1}{4}}}\, + \,c$
  • $4{\left( {\frac{{x + 1}}{{x - 2}}} \right)^{\frac{1}{4}}}\, + \,c$
  • C
    $4{\left( {\frac{{x - 2}}{{x + 1}}} \right)^{\frac{1}{4}}}\, + \,c$
  • D
    $ - \frac{4}{3}{\left( {\frac{{x - 2}}{{x + 1}}} \right)^{\frac{1}{4}}}\, + \,c$

Answer

Correct option: B.
$4{\left( {\frac{{x + 1}}{{x - 2}}} \right)^{\frac{1}{4}}}\, + \,c$
b
$\int \frac{d x}{(x+1)^{3 / 4}(x-2)^{5 / 4}}$

$\int {\frac{{dx}}{{{{\left( {\begin{array}{*{20}{c}}
{x + 1}\\
{x - 2}
\end{array}} \right)}^{3/4}}{{(x - 2)}^2}}}} $

$\text { put } \frac{x+1}{x-2}=t$

$\frac{{ - 3}}{{{{(x - 2)}^2}}} = \frac{{dt}}{{dx}}$

${\frac{d x}{(x-2)^{2}}=-\frac{d t}{3}} $

$ = \frac{{ - 1}}{3}\int {\frac{{dt}}{{{t^{3/4}}}}}  =  - \frac{1}{3}\int t \frac{{ - 3}}{4}It$

$ = \frac{1}{3}\left[ {\frac{{{t^{\frac{{ - 3}}{4} + 1}}}}{{\frac{{ - 3}}{4} + 1}}} \right]$

$ = \frac{{ - 4}}{3}{\left[ {\begin{array}{*{20}{c}}
{x + 1}\\
{x - 2}
\end{array}} \right]^{1/4}} + c$

Need a full question paper?

Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.

Start Generating Free

Explore more

More "M.C.Q (1 Marks)" from STD 12 - 7.1 inderfinite integralSTD 12 - 7.1 inderfinite integral — all question typesMathematics STD 12 Science question papersCBSE Board STD 12 Science question papersCBSE Board question paper generator

Similar questions

If $\text{A}=\begin{bmatrix}2&-1&3\\-4&5&1\end{bmatrix}$ and $\text{B}=\begin{bmatrix}2&3\\4&-2\\1&5\end{bmatrix},$ then:
Let $R$ be an equivalence relation on a finite set $A$ having $n$ elements. Then the number of ordered pairs in $R$ is
The number of relations, on the set $\{1,2,3\}$ containing $(1,2)$ and $(2,3)$, which are reflexive and transitive but not symmetric, is
Statement $1$ : The vectors $\vec a ,\vec b$ and $\vec c$ lie in the same plane if and only if $\vec a.\left( {\vec b \times \vec c} \right) = 0$
Statement $2$ : The vectors $\vec u$ and $\vec v$ are perpendicular if and only if $\vec u.\vec v = 0$ where $\vec u \times \vec v$ is a vector perpendicular to the plane of $\vec u$ and $\vec v$
The soluton of the differential equation $\frac{{dy}}{{dx}} = \frac{{x + y}}{x}$ satisfying the condition $y\left( 1 \right) = 1\;$ 
Let $\vec{a}, \vec{b}, \vec{c}$ be three vectors such that $|\overrightarrow{ a }|=\sqrt{31}, 4|\overrightarrow{ b }|=|\overrightarrow{ c }|=2$ and $2(\overrightarrow{ a } \times \overrightarrow{ b })=3(\overrightarrow{ c } \times \overrightarrow{ a })$. If the angle between $\vec{b}$ and $\vec{c}$ is $\frac{2 \pi}{3}$, then $\left(\frac{\vec{a} \times \vec{c}}{\vec{a} \cdot \vec{b}}\right)^2$ is equal to $............$.
The solution of the equation $\frac{{dy}}{{dx}} = \frac{{{y^2} - y - 2}}{{{x^2} + 2x - 3}}$ is
On the set $Q^+$ of all positive rational numbers a binary operation $*$ is defined by $\text{a}^*\text{b}=\frac{\text{ab}}2\forall\text{ a, b}\in \text{Q}^+$. The inverse of $8$ is:
If matrix $A=\left[a_{i j}\right]_{2 \times 2}$, where $a_{i j}=\left\{\begin{array}{l}1, \text { if } i \neq j \\ 0, \text { if } i=j\end{array}\right.$ then $A^2$ is equal to
$\int {\,\,\frac{{1 - {x^7}}}{{x(1 + {x^7})}}} $ $dx $ equals :