displaystyle ∫ (4ex/2ex-5e-x)dx=dX is equal to

Question

displaystyle ∫ (4ex/2ex-5e-x)dx=dX is equal to (A) 4 log |ex-5|+C (B) (1/4) log |e2x-5|+C (C)  log |2ex-5e-x|+C (D)  4 log |2ex-5|+C

Tardigrade Admin · Accepted Answer

Let I =∫ (4 ex/2 ex-5 e-x) d x =∫ (4 ex/2 ex-(5)ex) d x =∫ (4 e2 x/2 e2 x-5) d x operatornamePut 2 e2 x -5=t ⇒ 4 e2 x d x=d t ∴ I =∫ (d t/t) = log |t|+C ⇒ I = log |2 e2 x-5|+C

Q. $\int \frac{4 e ^{x}}{2 e ^{x} - 5 e ^{- x}} d x =$ dX is equal to

$4 l o g ∣ e^{x} - 5 ∣ + C$

$\frac{1}{4} l o g ∣ ∣ e^{2 x} - 5 ∣ ∣ + C$

$l o g ∣ 2 e^{x} - 5 e^{- x} ∣ + C$

$4 l o g ∣ 2 e^{x} - 5 ∣ + C$

$l o g ∣ ∣ 2 e^{2 x} - 5 ∣ ∣ + C$

Q. ∫2ex−5e−x4ex​dx=dX is equal to

4log∣ex−5∣+C

41​log∣∣​e2x−5∣∣​+C

log∣2ex−5e−x∣+C

4log∣2ex−5∣+C

log∣∣​2e2x−5∣∣​+C