Engineering Mathematics 3 Multiple Choice Questions And Answers Pdf

This set of Engineering Mathematics Multiple Choice Questions & Answers focuses on "Indeterminate Forms – 4".

1. \(\lim_{x\rightarrow 0}⁡\frac{x^2 Sin(x) – e^{x^2}}{Cos⁡(x+π/2)}\) is
a) 0
b) 1
c) 2
d) 3
View Answer

Answer: a
Explanation:
\(\lim_{x\rightarrow 0}⁡\frac{x^2 Sin(x) – e^{x^2}}{Cos⁡(x+π/2)}\)=-1/0 (Indeterminate form)
By L'Hospital rule
\(\lim_{x\rightarrow 0}⁡\frac{x^2 Sin(x) – e^{x^2}}{Cos⁡(x+π/2)}\) \(=\lim_{x\rightarrow 0}⁡\frac{x^2 Cos(x) + 2xSin(x) – 2xe^{x^2}}{-Sin(x+π/2)}\)= 0

2. Value of lim_{x → 0⁡}(1+Sin(x))^Cosec(x)
a) e
b) 0
c) 1
d) ∞
View Answer

Answer: a
Explanation: lim_{x → 0⁡}(1+Sin(x))^Cosec(x)
Put sin(x) = t we get
lim_{t → 0⁡}(1+t)^(¹⁄_t)= e.

3. Value of lim_{x → 0⁡}(1+cot(x))^sin(x)
a) e
b) e²
c) ¹⁄_e
d) Can not be solved
View Answer

Answer: a
Explanation:
\(\Rightarrow \lim_{x\rightarrow 0}(1+cot(x))^{sin(x)}=\lim_{x\rightarrow 0}(1+\frac{cos(x)}{sin(x)})^{sin(x)}\)
\(=\lim_{x\rightarrow 0}(1+\frac{cos(x)}{sin(x)})^{\frac{sin(x)}{cos(x)}cos(x)}\)
\(\Rightarrow \lim_{x\rightarrow 0}\left [(1+\frac{cos(x)}{sin(x)})^{\frac{sin(x}{cos(x)}}\right ]^{cos(x)} \)
\(\Rightarrow\) Put cos(x)/sin(x)=t gives
\(\Rightarrow \lim_{t\rightarrow 0}\left [(1+t)^{\frac{1}{t}} \right ] ^{\lim_{x\rightarrow 0}cos(x)}\)
=>e¹
=>e

4. \(\lim_{x\rightarrow\infty}f(x)^{g(x)}=\lim_{x\rightarrow\infty}f(x)^{\lim_{x\rightarrow\infty}g(x)}\)
a) True
b) False
View Answer

Answer: a
Explanation: It is a property of limits.

5. \(ln(lim_{x\rightarrow\infty}\frac{f(x)}{g(x)})=\lim_{x\rightarrow\infty}ln(f(x))+\lim_{x\rightarrow\infty}ln(g(x))\)
a) True
b) False
View Answer

Answer: b
Explanation:
\(ln(lim_{x\rightarrow\infty}\frac{f(x)}{g(x)})=ln(\frac{\lim_{x\rightarrow\infty}f(x)}{\lim_{x\rightarrow\infty}g(x)})\)
\(\Rightarrow ln(\lim_{x\rightarrow\infty}\frac{f(x)}{g(x)}) = \lim_{x\rightarrow\infty}ln(f(x)) – \lim_{x\rightarrow\infty}ln(g(x))\)

6. Evaluate lim_{x → 1⁡}[(x^x – 1) / (xlog(x))].
a) e^e
b) e
c) 1
d) e²
View Answer

Answer: c
Explanation: lim_{x → 1⁡} [(x^x – 1) / (xlog(x))] = (⁰⁄₀)
By L hospital rule,
lim_{x → 1⁡} [x^x (1+xlog(x))/ (1+xlog(x))] = lim_{x → 1⁡} [x^x] = 1.

7. Find n for which \(\lim_{x\rightarrow 0}\frac{(cos(x)-1)(cos(x)-e^x)}{x^n}\), has non zero value.
a) >=1
b) >=2
c) <=2
d) ~2
View Answer

Answer:b
Explanation: \(\lim_{x\rightarrow 0}\frac{(cos(x)-1)(cos(x)-e^x)}{x^n}=(0/0)\)
By L'Hospital Rule two times we get
=>\(\lim_{x\rightarrow 0}\frac{sin(2x)+e^x(cos(x)+sin(x))}{n(n-1)x^{n-2}}\)
Hence, limit have non zero limit, if n ≠ 0 and (n-1) ≠ 0 and (n-2) >= 0 means n >= 2.

8. Find the value of lim_{x → 0⁡}(Sin(2x))^{Tan² (2x)}?
a) e^0.5
b) e^-0.5
c) e^-1
d) e
View Answer

Answer: b
Explanation: y=\(\lim_{x\rightarrow 0}(sin(2x))^{tan^2(2x)}\)
Taking log of both side
\(ln y=\lim_{x\rightarrow 0}\frac{ln(sin(2x))}{cot^2(2x)}(0/0)\)
By L'Hospital Rule
\(ln y=-\lim_{x\rightarrow 0}\frac{2cos(2x)}{sin(2x).4.cosec^2(2x)cot(2x)}=-0.5\lim_{x\rightarrow 0}sin^2(2x)\)=-0.5
=>y=e^-0.5

9. Evaluate \(\lim_{x\rightarrow\infty}\left [\frac{x-1}{x-2} \right ]^x\).
a) ¹⁄₄
b) ¹⁄₃
c) ¹⁄₂
d) 1
View Answer

Answer: c
Explanation: \(y=\lim_{x\rightarrow\infty}\left [\frac{x-1}{x-2} \right ]^x\)
\(ln y=\lim_{x\rightarrow\infty}xln\left [\frac{x-1}{x-2} \right ]\)
=>\(\lim_{x\rightarrow\infty}\frac{\left [\frac{x-1}{x-2} \right ]}{\frac{1}{x}}\)
By putting 1=1/y, we get
=>\(\lim_{y\rightarrow 0}\frac{ln\left [\frac{x-1}{x-2} \right ]}{y}=[ln(1/2)]/0\) (i.e indeterminate)
Hence by applying L'Hospital rule
=>\(\lim_{y\rightarrow 0}\frac{ln\left [\frac{x-1}{x-2} \right ]}{y}=\lim_{y\rightarrow 0}\frac{\frac{2-y-1+y}{(2-y)^2}}{\frac{1-y}{2-y}}=\lim_{y\rightarrow 0}\frac{\frac{1}{2-y}}{\frac{1-y}{1}}=\lim_{y\rightarrow 0}(\frac{1}{(2-y)(1-y)})\)=1/2

Sanfoundry Global Education & Learning Series – Engineering Mathematics.

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