The area enclosed between the curve y = loge (x + e) and the coordinate axes is

Question

The area enclosed between the curve y = loge (x + e) and the coordinate axes is (A) 1 (B) 2 (C) 3 (D) 4

Tardigrade Admin · Accepted Answer

The graph of the curve y = loge (x + e) is as shown in the fig. <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/mathematics/5be67a9c7ed15a9eddf78af938ebbaa6-.jpeg" /> Required area A = ∫ limits01-e ydx = ∫ limits01-e loge (x +e)dx put x + e = t ⇒ dx = dt also At x = 1 - e, t = 1 At x = 0, t = e ∴ A = ∫ limitse1 loge tdt = [ t loge t - t]e1 e - e - 0 +1 = 1 Hence the required area is 1 square unit.

Q. The area enclosed between the curve y=loge​(x+e) and the coordinate axes is

1

2

3

4

The graph of the curve y=loge​(x+e) is as shown in the fig. Required area A=1−e∫0​ydx=1−e∫0​loge​(x+e)dx put x+e=t⇒dx=dt also At x=1−e,t=1 At x=0,t=e ∴A=1∫e​loge​tdt=[tloge​t−t]1e​ e - e - 0 +1 = 1 Hence the required area is 1 square unit.

Q. The area enclosed between the curve $y = lo g_{e} (x + e)$ and the coordinate axes is