Which of the following is NOT a basic logic gate?

The correct answer is C: XOR gate. XOR is a derived logic gate made from combination of basic gates (AND, OR, NOT). The three basic gates are AND, OR, and NOT.

In a saturated BJT transistor used as a switch, the voltage drop VCE(sat) is typically

The correct answer is B: 0.1 - 0.3 V. In saturation, VCE(sat) ≈ 0.1-0.3 V for silicon BJT (not zero due to residual resistance). VBE(on) ≈ 0.7V in saturation. This is used in switching applications.

In a differential amplifier, Common Mode Rejection Ratio (CMRR) is measured as 80 dB. What is the numerical ratio of differential gain to common mode gain?

The correct answer is C: 10000. CMRR (dB) = 20 log₁₀(Ad/Ac); 80 = 20 log₁₀(ratio), therefore ratio = 10^(80/20) = 10^4 = 10000.

The energy of a signal x[n] = {1, 2, -1, 0} is:

The correct answer is B: 6. Energy = 1² + 2² + (-1)² + 0² = 1 + 4 + 1 + 0 = 6.

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Electronics (ECE)

Analog/digital electronics, communication

135 Q 4 Topics Take Mock Test

Difficulty: All Easy Medium Hard 11–20 of 135

Topics in Electronics (ECE)

All Electronic Devices 100 Digital Electronics 100 Analog Circuits 100 Signals & Systems 100

Q.11 Easy Signals & Systems

For a Laplace transform H(s) = 5/(s+3), the system impulse response is:

A 5e^(-3t)u(t)

B 5e^(3t)u(t)

C -5e^(-3t)u(t)

D e^(-3t)u(t)

Correct Answer: A. 5e^(-3t)u(t)

EXPLANATION

Using partial fractions and standard pairs: L^(-1){K/(s+a)} = Ke^(-at)u(t). Here K=5, a=3, so h(t) = 5e^(-3t)u(t).

Test

Q.12 Easy Signals & Systems

The DTFT of x[n] = δ[n-3] is:

A e^(-j3ω)

B e^(j3ω)

C cos(3ω)

D 1

Correct Answer: A. e^(-j3ω)

EXPLANATION

DTFT{δ[n-n₀]} = e^(-jωn₀). With n₀=3, X(e^(jω)) = e^(-j3ω).

Test

Q.13 Easy Signals & Systems

A continuous-time signal x(t) is band-limited to 15 kHz. Using ideal reconstruction from samples, the minimum sampling frequency required is:

A 7.5 kHz

B 15 kHz

C 30 kHz

D 60 kHz

Correct Answer: C. 30 kHz

EXPLANATION

Nyquist theorem: fs ≥ 2 × fmax = 2 × 15 kHz = 30 kHz.

Test

Q.14 Easy Signals & Systems

For a periodic signal x[n] with period N=4, the DFT X[k] has X[0]=8. The average value of the signal is:

A 1

B 2

C 4

D 8

Correct Answer: B. 2

EXPLANATION

X[0] = Σ x[n] (sum of all samples in one period). Average = X[0]/N = 8/4 = 2.

Test

Q.15 Easy Signals & Systems

The energy of signal x[n] = {1, 2, 1, -1} over the given support is:

A 5

B 7

C 8

D 9

Correct Answer: B. 7

EXPLANATION

Energy E = Σ|x[n]|² = 1² + 2² + 1² + (-1)² = 1 + 4 + 1 + 1 = 7.

Test

Q.16 Easy Signals & Systems

A signal x(t) = sin(2πf₀t) is sampled at fs = 5f₀. What is the Nyquist sampling rate required?

A f₀

B 2f₀

C 2.5f₀

D 5f₀

Correct Answer: B. 2f₀

EXPLANATION

Nyquist rate = 2 × maximum frequency = 2f₀. The given sampling rate (5f₀) exceeds this, ensuring no aliasing.

Test

Q.17 Easy Signals & Systems

The Z-transform of x[n] = n·(0.8)^n u[n] is:

A 0.8z/(z-0.8)²

B 0.8z/(z-0.8)

C z/(z-0.8)²

D 0.8/(z-0.8)²

Correct Answer: A. 0.8z/(z-0.8)²

EXPLANATION

Using the property that Z{n·a^n·u[n]} = az/(z-a)², with a=0.8, we get X(z) = 0.8z/(z-0.8)².

Test

Q.18 Easy Signals & Systems

A finite-duration signal x[n] has length N=8. Its DFT X[k] has length:

A 4

B 8

C 16

D Depends on zero-padding

Correct Answer: B. 8

EXPLANATION

DFT length equals the input signal length unless zero-padding is applied. For N-point signal, DFT yields N frequency bins.

Test

Q.19 Easy Signals & Systems

A signal has power spectral density S_x(f) that is nonzero only for |f| ≤ 2 kHz. The minimum sampling frequency is:

A 2 kHz

B 4 kHz

C 8 kHz

D 16 kHz

Correct Answer: B. 4 kHz

EXPLANATION

By Nyquist theorem, f_s ≥ 2×f_max = 2×2 = 4 kHz.

Test

Q.20 Easy Signals & Systems

The convolution of x[n] = {1, 2, 3} and h[n] = {1, 1} yields a sequence of length:

A 2

B 3

C 4

D 5

Correct Answer: C. 4

EXPLANATION

Length of convolution = M + N - 1 = 3 + 2 - 1 = 4.

Test

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