Step 1: Mean of the process \( f(t) \)
The mean of \( f(t) \) is computed as: \[ E[f(t)] = E\left[\sum_{n=1}^{N} a_n p(t - nT)\right]. \] Since \( a_n \) are zero-mean independent random variables, the expectation of each \( a_n \) is 0. Thus: \[ E[f(t)] = 0 \quad {for all } t. \] Therefore, the mean of the process \( f(t) \) is indeed independent of time \( t \), and (i) is TRUE.
Step 2: Autocorrelation function
The autocorrelation function is: \[ R_f(\tau) = E[f(t)f(t+\tau)] = E\left[\sum_{n=1}^{N} a_n p(t - nT) \sum_{m=1}^{N} a_m p(t + \tau - mT)\right]. \] Since \( a_n \) are independent, the autocorrelation will depend on \( t \) because the function \( p(t) \) is not constant over time (it is non-zero only in the range \( [0, 0.5T] \)). Thus, the autocorrelation function is not independent of time. So, (ii) is FALSE.
Conclusion:
Statement (i) is TRUE because the mean is constant and independent of time.
Statement (ii) is FALSE because the autocorrelation function depends on time \( t \). Thus, the correct answer is (A): (i) is TRUE and (ii) is FALSE.
A positive-edge-triggered sequential circuit is shown below. There are no timing violations in the circuit. Input \( P_0 \) is set to logic ‘0’ and \( P_1 \) is set to logic ‘1’ at all times. The timing diagram of the inputs \( SEL \) and \( S \) are also shown below. The sequence of output \( Y \) from time \( T_0 \) to \( T_3 \) is _________.
The identical MOSFETs \( M_1 \) and \( M_2 \) in the circuit given below are ideal and biased in the saturation region. \( M_1 \) and \( M_2 \) have a transconductance \( g_m \) of 5 mS. The input signals (in Volts) are: \[ V_1 = 2.5 + 0.01 \sin \omega t, \quad V_2 = 2.5 - 0.01 \sin \omega t. \] The output signal \( V_3 \) (in Volts) is _________.
Here are two analogous groups, Group-I and Group-II, that list words in their decreasing order of intensity. Identify the missing word in Group-II.
Abuse \( \rightarrow \) Insult \( \rightarrow \) Ridicule
__________ \( \rightarrow \) Praise \( \rightarrow \) Appreciate
Two resistors are connected in a circuit loop of area 5 m\(^2\), as shown in the figure below. The circuit loop is placed on the \( x-y \) plane. When a time-varying magnetic flux, with flux-density \( B(t) = 0.5t \) (in Tesla), is applied along the positive \( z \)-axis, the magnitude of current \( I \) (in Amperes, rounded off to two decimal places) in the loop is (answer in Amperes).
A 50 \(\Omega\) lossless transmission line is terminated with a load \( Z_L = (50 - j75) \, \Omega.\) { If the average incident power on the line is 10 mW, then the average power delivered to the load
(in mW, rounded off to one decimal place) is} _________.
In the circuit shown below, the AND gate has a propagation delay of 1 ns. The edge-triggered flip-flops have a set-up time of 2 ns, a hold-time of 0 ns, and a clock-to-Q delay of 2 ns. The maximum clock frequency (in MHz, rounded off to the nearest integer) such that there are no setup violations is (answer in MHz).