The output of the following logic circuit is:

  • A
    $(\bar{A}+B)+(\bar{A}+\bar{C})+(B+\bar{C})$
  • B
    $(A+\bar{B}) \cdot (A+C) \cdot (\bar{B}+\bar{C})$
  • C
    $(\bar{A}+B) \cdot (\bar{A}+\bar{C}) \cdot (B+\bar{C})$
  • D
    $(\bar{A}+B)-(\bar{A}+\bar{C})-(B+\bar{C})$

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The Boolean expression $Y = A \bar{B} C + \bar{A} \bar{C}$ can be realized with which of the following gate configurations?
$A.$ One $3$-input $\text{AND}$ gate,$2$ $\text{NOT}$ gates,one $2$-input $\text{AND}$ gate,and one $2$-input $\text{OR}$ gate.
$B.$ One $3$-input $\text{AND}$ gate,$2$ $\text{NOT}$ gates,one $2$-input $\text{NAND}$ gate,and one $2$-input $\text{OR}$ gate.
$C.$ One $3$-input $\text{OR}$ gate,$3$ $\text{NOT}$ gates,and one $2$-input $\text{AND}$ gate.
Choose the correct answer from the options given below.

In the circuit shown in the following figure,the value of $y$ is:

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Assertion: The logic gate $NOT$ can be built using a diode.
Reason: The output voltage and the input voltage of the diode have a $180^o$ phase difference.

In the Boolean algebra,$(\overline {\bar A \cdot \bar B} ) \cdot A$ is equal to:

Input waveforms $A$ and $B$ as shown in Fig-$I$ are applied to the combination of gates as shown in Fig-$II$. Which of the waveforms shown in Fig-$(i)$ to Fig-$(iv)$ correctly represents the output waveform $Y$?

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