मराठी
सी. बी. एस. ई.वाणिज्य (इंग्रजी माध्यम) इयत्ता १२
प्रश्नपत्रिका२५८०
पाठ्यपुस्तक उत्तरे२०३४५
MCQ ऑनलाइन सराव परीक्षा४२
महत्वाचे प्रश्न आणि उत्तरे२२६५४
संकल्पना स्पष्टीकरण आणि व्हिडिओ६०८
टाइम टेबल२४
अभ्यासक्रम

Evaluate: ∫ (1)/(sin^2 x cos^2 x) dx - Mathematics

Advertisements
Advertisements

प्रश्न

Evaluate:

`∫ (1)/(sin^2 x cos^2 x) dx`

मूल्यांकन
Advertisements

उत्तर

\[\int\frac{1}{\sin^2 x \cos^2 x}dx = 4\int\frac{1}{4 \sin^2 x \cos^2 x}dx\]
\[ = 4\int\frac{1}{\sin^2 \left( 2x \right)}dx\]
\[ = 4\int {cosec}^2 \left( 2x \right) dx\]
\[ = - \frac{4}{2}\cot\left( 2x \right) + c\]
\[ = - 2\cot\left( 2x \right) + c\]
\[\text{ Hence,} \int\frac{1}{\sin^2 x \cos^2 x}dx = - \text{2 cot}\left( \text{2x}\right) + c\]
shaalaa.com
Evaluation of Simple Integrals of the Following Types and Problems
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
Q 61
पाठ 19: Indefinite Integrals - Very Short Answers [पृष्ठ १९८]

APPEARS IN

आरडी शर्मा Mathematics [English] Class 12
पाठ 19 Indefinite Integrals
Very Short Answers | Q 61 | पृष्ठ १९८
2021-2022 (March) Official Board Paper (with solutions)
Q 2. (a) | 2 marks

संबंधित प्रश्‍न

Integrate the following w.r.t. x `(x^3-3x+1)/sqrt(1-x^2)`


`∫   x    \sqrt{x + 2}     dx ` 

\[\int\frac{x - 1}{\sqrt{x + 4}} dx\]

\[\int\sqrt{\frac{1 - \cos x}{1 + \cos x}} dx\]

\[\int\frac{1 + \tan x}{1 - \tan x} dx\]

\[\int\frac{e^{2x}}{e^{2x} - 2} dx\]

\[\int\frac{2 \cos x - 3 \sin x}{6 \cos x + 4 \sin x} dx\]

\[\int\frac{sec x}{\log \left( \text{sec x }+ \text{tan x} \right)} dx\]

\[\int\frac{e^{x - 1} + x^{e - 1}}{e^x + x^e} dx\]

\[\int\frac{1}{\sin x \cos^2 x} dx\]

 ` ∫       cot^3   x  "cosec"^2   x   dx `


\[\int\frac{x + 5}{3 x^2 + 13x - 10}\text{ dx }\]

Evaluate the following integrals: 

\[\int\frac{x + 2}{\sqrt{x^2 + 2x + 3}} \text{ dx }\]

Evaluate the following integrals:

\[\int e^{2x} \left( \frac{1 - \sin2x}{1 - \cos2x} \right)dx\]

\[\int e^{2x} \text{ sin x cos x dx }\]

\[\int\left( x - 3 \right)\sqrt{x^2 + 3x - 18} \text{  dx }\]

Evaluate the following integral:

\[\int\frac{3x - 2}{\left( x + 1 \right)^2 \left( x + 3 \right)}dx\]

\[\int\frac{2x + 1}{\left( x + 2 \right) \left( x - 3 \right)^2} dx\]

Evaluate the following integral:

\[\int\frac{2 x^2 + 1}{x^2 \left( x^2 + 4 \right)}dx\]

\[\int\frac{\cos x}{\left( 1 - \sin x \right) \left( 2 - \sin x \right)} dx\]

\[\int\frac{( x^2 + 1) ( x^2 + 4)}{( x^2 + 3) ( x^2 - 5)} dx\]

Evaluate the following integral:

\[\int\frac{1}{\sin^4 x + \sin^2 x \cos^2 x + \cos^4 x}dx\]

Evaluate:\[\int\frac{\sec^2 \sqrt{x}}{\sqrt{x}} \text{ dx }\]

 


Evaluate:\[\int\frac{\sin \sqrt{x}}{\sqrt{x}} \text{ dx }\]


Write the value of\[\int\sec x \left( \sec x + \tan x \right)\text{  dx }\]


Evaluate: \[\int\frac{1}{x^2 + 16}\text{ dx }\]


Evaluate: \[\int\frac{x + \cos6x}{3 x^2 + \sin6x}\text{ dx }\]


Evaluate:  \[\int\frac{2}{1 - \cos2x}\text{ dx }\]


Evaluate the following:

`int sqrt(1 + x^2)/x^4 "d"x`


Evaluate the following:

`int ("d"x)/sqrt(16 - 9x^2)`


Evaluate the following:

`int (3x - 1)/sqrt(x^2 + 9) "d"x`


Evaluate the following:

`int sqrt(5 - 2x + x^2) "d"x`


Evaluate the following:

`int x/(x^4 - 1) "d"x`


Evaluate the following:

`int sqrt(x)/(sqrt("a"^3 - x^3)) "d"x`


Evaluate the following:

`int_1^2 ("d"x)/sqrt((x - 1)(2 - x))`


Share
Notifications

Englishहिंदीमराठी
Login
Create free account


      Forgot password?
Course
Use app×