GATE EE 2013 | GATE EE Year Wise Previous Years Questions

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GATE EE 2013

MCQ (Single Correct Answer)

-0.3

The impulse response of a system is h(t) = tu(t). For an input u(t − 1), the output is

$$\frac{t^2}2u\left(t\right)$$

$$\frac{t\left(t-1\right)}2u\left(t-1\right)$$

$$\frac{\left(t-1\right)^2}2u\left(t-1\right)$$

$$\frac{t^2-1}2u\left(t-1\right)$$

GATE EE 2013

MCQ (Single Correct Answer)

-0.3

Assuming zero initial condition, the response y(t) of the system given below to a unit step input u(t) is GATE EE 2013 Signals and Systems - Linear Time Invariant Systems Question 40 English

GATE EE 2013 Signals and Systems - Linear Time Invariant Systems Question 40 English

u(t)

tu(t)

$$\frac{t^2}2u\left(t\right)$$

$$e^{-t}u\left(t\right)$$

GATE EE 2013

MCQ (Single Correct Answer)

-0.3

Two systems with impulse responses h₁(t) and h₂(t) are connected in cascade. Then the overall impulse response of the cascaded system is given by

product of h₁(t) and h₂(t)

Sum of h₁(t) and h₂(t)

Convolution of h₁(t) and h₂(t)

subtraction of h₂(t) and h₁(t)

GATE EE 2013

MCQ (Single Correct Answer)

-0.6

The impulse response of a continuous time system is given by h(t) = $$\delta$$(t − 1) + $$\delta$$(t − 3). The value of the step response at t = 2 is

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