∫(1+ tan 2x/1- tan 2x)dx is equal to

Question

∫(1+ tan 2x/1- tan 2x)dx is equal to (A)  log ( (1- tan x/1+ tan x) )+c  (B)  log ( (1+ tan x/1- tan x) )+c  (C)  (1/2) log ( (1- tan x/1+ tan x) )+c  (D)  (1/2) log ( (1+ tan x/1- tan x) )+c

Tardigrade Admin · Accepted Answer

Let I=∫(1+ tan 2x/1- tan 2x)dx =∫( sec 2x/1- tan 2x)dx Let tan text dx=t ⇒ sec2xdx=dt ∴ I=∫(1/1-t2)dt =(1/2)∫( (1/1-t)+(1/1+t) )dt =(1/2)[- log (1-t)+ log (1+t)]+c =(1/2) log (1+t/1-t)+c =(1/2) log (1+ tan x/1- tan x)+c

Q. $\int \frac{1 + t a n ^{2} x}{1 - t a n ^{2} x} d x$ is equal to

$lo g (\frac{1 - t a n x}{1 + t a n x}) + c$

$lo g (\frac{1 + t a n x}{1 - t a n x}) + c$

$\frac{1}{2} lo g (\frac{1 - t a n x}{1 + t a n x}) + c$

$\frac{1}{2} lo g (\frac{1 + t a n x}{1 - t a n x}) + c$

Q. ∫1−tan2x1+tan2x​dx is equal to

log(1+tanx1−tanx​)+c

log(1−tanx1+tanx​)+c

21​log(1+tanx1−tanx​)+c

21​log(1−tanx1+tanx​)+c

Let I=∫1−tan2x1+tan2x​dx =∫1−tan2xsec2x​dx Let tandx=t ⇒ sec2xdx=dt ∴ I=∫1−t21​dt =21​∫(1−t1​+1+t1​)dt =21​[−log(1−t)+log(1+t)]+c =21​log1−t1+t​+c =21​log1−tanx1+tanx​+c

Q. $\int \frac{1 + t a n ^{2} x}{1 - t a n ^{2} x} d x$ is equal to

$lo g (\frac{1 - t a n x}{1 + t a n x}) + c$

$lo g (\frac{1 + t a n x}{1 - t a n x}) + c$

$\frac{1}{2} lo g (\frac{1 - t a n x}{1 + t a n x}) + c$

$\frac{1}{2} lo g (\frac{1 + t a n x}{1 - t a n x}) + c$