∫ ( textcosecx / cos2(1+ Log Tan (x)2)) dx =

Question

∫ ( textcosecx / cos2(1+ Log Tan (x)2)) dx = (A) - tan [1 + Log Tan (x/2)]+c (B) Sec2 [1+ Log Tan (x/2)]+c (C) tan [1 + Log Tan (x/2)]+c (D) Sin2 [1 + Log Tan (x/2)]+c

Tardigrade Admin · Accepted Answer

Let I = ∫ ( textcosec x/ cos2 (1+ log tan (x)2))dx Put 1+ log tan (x/2) =t ⇒ (1/ tan ( x)2) . sec2 (x/2) . (1/2) dx =dt ⇒ (1/ 2 sin (x)2 cos (x)2 dx =dt ⇒ text/cosec) x dx =dt ∴ I = ∫ (dt/ cos2t ) = ∫ sec2 t dt = tan t +c = tan (1+ log tan (x/2)) +c

Q. $\int \frac{cosecx}{c o s ^{2} ( 1 + L o g T an \frac{x}{2} )} d x$ =

$- t an [1 + L o g T an \frac{x}{2}] + c$

$S e c^{2} [1 + L o g T an \frac{x}{2}] + c$

$t an [1 + L o g T an \frac{x}{2}] + c$

$S i n^{2} [1 + L o g T an \frac{x}{2}] + c$

Q. ∫cos2(1+LogTan2x​)cosecx ​dx=

−tan[1+LogTan2x​]+c

Sec2[1+LogTan2x​]+c

tan[1+LogTan2x​]+c

Sin2[1+LogTan2x​]+c

Let I=∫cos2(1+logtan2x​)cosec x​dx Put 1+logtan2x​=t ⇒tan2x​1​.sec22x​.21​dx=dt ⇒2sin2x​cos2x​1​dx=dt ⇒cosecxdx=dt ∴I=∫cos2tdt​=∫sec2tdt =tant+c =tan(1+logtan2x​)+c

Q. $\int \frac{cosecx}{c o s ^{2} ( 1 + L o g T an \frac{x}{2} )} d x$ =

$- t an [1 + L o g T an \frac{x}{2}] + c$

$S e c^{2} [1 + L o g T an \frac{x}{2}] + c$

$t an [1 + L o g T an \frac{x}{2}] + c$

$S i n^{2} [1 + L o g T an \frac{x}{2}] + c$