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STD 12 - 7.1 inderfinite integral — JEE STD 11 Science — Question

Gujarat BoardEnglish MediumSTD 11 ScienceJEESTD 12 - 7.1 inderfinite integral4 Marks
MCQ
$\int {\frac{{dx}}{{\sin (x - a)\sin (x - b)}}} $ is
  • $\frac{1}{{\sin (a - b)}}\log \left| {\frac{{\sin (x - a)}}{{\sin (x - b)}}} \right| + c$
  • B
    $\frac{{ - 1}}{{\sin (a - b)}}\log \left| {\frac{{\sin (x - a)}}{{\sin (x - b)}}} \right| + c$
  • C
    $\log \sin (x - a)\sin (x - b) + c$
  • D
    $\log \left| {\frac{{\sin (x - a)}}{{\sin (x - b)}}} \right|$

Answer

Correct option: A.
$\frac{1}{{\sin (a - b)}}\log \left| {\frac{{\sin (x - a)}}{{\sin (x - b)}}} \right| + c$
a
(a) Let $ I =$ $\int {\frac{{dx}}{{\sin (x - a)\sin (x - b)}}} $
$ = \frac{1}{{\sin (a - b)}}\int {\frac{{\sin \left\{ {(x - b) - (x - a)} \right\}}}{{\sin (x - a)\sin (x - b)}}} \;dx$
$ = \frac{1}{{\sin (a - b)}}\int {\frac{{\sin (x - b)\cos (x - a) - \cos (x - b)\sin (x - a)}}{{\sin (x - a)\sin (x - b)}}dx} $
$ = \frac{1}{{\sin (a - b)}}\left[ {\int {\cot (x - a)dx - \int {\cot (x - b)dx} } } \right]$
$ = \frac{1}{{\sin (a - b)}}\;\left[ {\log \sin (x - a) - \log \sin (x - b)} \right] + c$
$ I =$ $ = \frac{1}{{\sin (a - b)}}\;\log \left| {\frac{{\sin (x - a)}}{{\sin (x - b)}}} \right| + c$.

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