Find the expression of f (t) in the graph shown below.

10t [u (t) – u (t – 1)] + (-10t+20) [u (t-1) – u (t-3)] – (20t – 40) [u (t-3) – u (t-4)]

10t [u (t) – u (t – 1)] – (-10t+20) [u (t-1) – u (t-3)] + (20t – 40) [u (t-3) – u (t-4)]

10t [u (t) – u (t – 1)] – (-10t+20) [u (t-1) – u (t-3)] – (20t – 40) [u (t-3) – u (t-4)]

10t [u (t) – u (t – 1)] + (-10t+20) [u (t-1) – u (t-3)] + (20t – 40) [u (t-3) – u (t-4)]

10t [u (t) – u (t – 1)] + (-10t+20) [u (t-1) – u (t-3)] – (20t – 40) [u (t-3) – u (t-4)]

Find the function f3 (t) from the time t = 3 to 4 sec.

(20t + 40) [u (t-3) – u (t-4)]

(20t – 40) [u (t-3) – u (t-4)]

(20t + 40) [u (t-3) – u (t-4)]

(20t – 40) [u (t-3) + u (t-4)]

Find the function f2 (t) from the time t = 1 to 3 sec.

(-10t+20) [u (t-1) – u (t-3)]

(-10t-20) [u (t-1) – u (t-3)]

FIND_THE_FUNCTION_F_(T)_IN_TERMS_OF_UNIT_STEP_FUNCTION_IN_THE_GRAPH_SHOWN_IN_QUESTION_9.?$

4t [u (t) + u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 5)].

4t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t + 5)].

4t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 5)].

4t [u (t) + u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 5)].

Find the expression of f (t) in the graph shown in question 5?

10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] + (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].

10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] + (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].

10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].

10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] + (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] + (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].

10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] + (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].

Find the function f2 (t) from the time t = 1 to 3 sec.

(-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)].

(-10t-20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)].

In the bilateral Laplace transform, the lower limit is?

‚Äö√Ñ√∂‚àö‚Ä†‚àö¬™

‚Äö√Ñ√∂‚àö√ë‚àö¬® ‚Äö√Ñ√∂‚àö‚Ä†‚àö¬™

13 + Mcqs in Definition Laplace in Network Theory Page 1 McqOptions

1.	Find the function f (t) in terms of unit step function in the graph shown below.
A.	4t [u (t) – u (t + 5)]
B.	4t [u (t) + u (t + 5)]
C.	4t [u (t) – u (t – 5)]
D.	4t [u (t) + u (t – 5)]
Answer» D. 4t [u (t) + u (t – 5)]

Discussion

2.	In the graph shown below, find the expression f (t).
A.	2t
B.	3t
C.	4t
D.	5t
Answer» D. 5t

Discussion

3.	Find the expression of f (t) in the graph shown below.
A.	10t [u (t) – u (t – 1)] – (-10t+20) [u (t-1) – u (t-3)] + (20t – 40) [u (t-3) – u (t-4)]
B.	10t [u (t) – u (t – 1)] – (-10t+20) [u (t-1) – u (t-3)] – (20t – 40) [u (t-3) – u (t-4)]
C.	10t [u (t) – u (t – 1)] + (-10t+20) [u (t-1) – u (t-3)] + (20t – 40) [u (t-3) – u (t-4)]
D.	10t [u (t) – u (t – 1)] + (-10t+20) [u (t-1) – u (t-3)] – (20t – 40) [u (t-3) – u (t-4)]
Answer» D. 10t [u (t) – u (t – 1)] + (-10t+20) [u (t-1) – u (t-3)] – (20t – 40) [u (t-3) – u (t-4)]

Discussion

4.	Find the function f3 (t) from the time t = 3 to 4 sec.
A.	(20t – 40) [u (t-3) – u (t-4)]
B.	(20t + 40) [u (t-3) – u (t-4)]
C.	(20t + 40) [u (t-3) + u (t-4)]
D.	(20t – 40) [u (t-3) + u (t-4)]
Answer» B. (20t + 40) [u (t-3) – u (t-4)]

Discussion

5.	Find the function f2 (t) from the time t = 1 to 3 sec.
A.	(-10t+20) [u (t-1) +u (t-3)]
B.	(-10t+20) [u (t-1) – u (t-3)]
C.	(-10t-20) [u (t-1) + u (t-3)]
D.	(-10t-20) [u (t-1) – u (t-3)]
Answer» C. (-10t-20) [u (t-1) + u (t-3)]

Discussion

6.	The total period of the function shown in the figure is 4 sec and the amplitude is 10. Find the function f1 (t) from t = 0 to 1 in terms of unit step function.
A.	10t [u (t) – u (t + 1)]
B.	10t [u (t) + u (t – 1)]
C.	10t [u (t) + u (t + 1)]
D.	10t [u (t) – u (t – 1)]
Answer» E.

Discussion

7.	The Laplace transform of a function f (t) is?
A.	$\int_0^{\infty}$ f(t) e-st
B.	$\int_{-\infty}^0$ f(t) e-st
C.	$\int_0^{\infty}$ f(t) est
D.	$\int_{-\infty}^0$ f(t) est
Answer» B. $\int_{-\infty}^0$ f(t) e-st

Discussion

8.	FIND_THE_FUNCTION_F_(T)_IN_TERMS_OF_UNIT_STEP_FUNCTION_IN_THE_GRAPH_SHOWN_IN_QUESTION_9.?$
A.	4t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t + 5)].
B.	4t [u (t) + u (t + 5)].
C.	4t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 5)].
D.	4t [u (t) + u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 5)].
Answer» D. 4t [u (t) + u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 5)].

Discussion

9.	Find the expression of f (t) in the graph shown in question 5?
A.	10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] + (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].
B.	10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].
C.	10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] + (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] + (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].
D.	10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] + (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].
Answer» D. 10t [u (t) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 1)] + (-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)] ‚Äö√Ñ√∂‚àö√ë‚àö¬® (20t ‚Äö√Ñ√∂‚àö√ë‚àö¬® 40) [u (t-3) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-4)].

Discussion

10.	Find the function f₂ (t) from the time t = 1 to 3 sec.
A.	(-10t+20) [u (t-1) +u (t-3)].
B.	(-10t+20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)].
C.	(-10t-20) [u (t-1) + u (t-3)].
D.	(-10t-20) [u (t-1) ‚Äö√Ñ√∂‚àö√ë‚àö¬® u (t-3)].
Answer» C. (-10t-20) [u (t-1) + u (t-3)].

Discussion

11.	The unit step is not defined at t =?
A.	0
B.	1
C.	2
D.	3
Answer» B. 1

Discussion

12.	In the bilateral Laplace transform, the lower limit is?
A.	0
B.	1
C.	‚Äö√Ñ√∂‚àö‚Ä†‚àö¬™
D.	‚Äö√Ñ√∂‚àö√ë‚àö¬® ‚Äö√Ñ√∂‚àö‚Ä†‚àö¬™
Answer» E.

Discussion

13.	Laplace transform changes the ____ domain function to the _____ domain function.
A.	time, time
B.	time, frequency
C.	frequency, time
D.	frequency, frequency
Answer» C. frequency, time

Discussion

Explore topic-wise MCQs in Network Theory.

Find the function f (t) in terms of unit step function in the graph shown below.

In the graph shown below, find the expression f (t).

Find the expression of f (t) in the graph shown below.

Find the function f3 (t) from the time t = 3 to 4 sec.

Find the function f2 (t) from the time t = 1 to 3 sec.

The total period of the function shown in the figure is 4 sec and the amplitude is 10. Find the function f1 (t) from t = 0 to 1 in terms of unit step function.

The Laplace transform of a function f (t) is?

FIND_THE_FUNCTION_F_(T)_IN_TERMS_OF_UNIT_STEP_FUNCTION_IN_THE_GRAPH_SHOWN_IN_QUESTION_9.?$

Find the expression of f (t) in the graph shown in question 5?

Find the function f₂ (t) from the time t = 1 to 3 sec.

The unit step is not defined at t =?

In the bilateral Laplace transform, the lower limit is?

Laplace transform changes the domain function to the _ domain function.

7.	The Laplace transform of a function f (t) is?
A.	\(\int_0^{\infty}\) f(t) e-st
B.	\(\int_{-\infty}^0\) f(t) e-st
C.	\(\int_0^{\infty}\) f(t) est
D.	\(\int_{-\infty}^0\) f(t) est
Answer» B. \(\int_{-\infty}^0\) f(t) e-st

Explore topic-wise MCQs in Network Theory.

Find the function f (t) in terms of unit step function in the graph shown below.

In the graph shown below, find the expression f (t).

Find the expression of f (t) in the graph shown below.

Find the function f3 (t) from the time t = 3 to 4 sec.

Find the function f2 (t) from the time t = 1 to 3 sec.

The total period of the function shown in the figure is 4 sec and the amplitude is 10. Find the function f1 (t) from t = 0 to 1 in terms of unit step function.

The Laplace transform of a function f (t) is?

FIND_THE_FUNCTION_F_(T)_IN_TERMS_OF_UNIT_STEP_FUNCTION_IN_THE_GRAPH_SHOWN_IN_QUESTION_9.?$

Find the expression of f (t) in the graph shown in question 5?

Find the function f2 (t) from the time t = 1 to 3 sec.

The unit step is not defined at t =?

In the bilateral Laplace transform, the lower limit is?

Laplace transform changes the ____ domain function to the _____ domain function.

Find the function f₂ (t) from the time t = 1 to 3 sec.

Laplace transform changes the domain function to the _ domain function.