Question:
For the given logic gate circuit, which of the following is the correct truth table ?
For the given logic gate circuit, which of the following is the correct truth table ?
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XOR gate output is 1 only when inputs are different.
Updated On: Feb 5, 2026
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The Correct Option is B
Solution and Explanation
Gate 1 (Top) is NAND: Output $X = \overline{nm}$.
Gate 2 (Bottom) is OR: Output $Y = n+m$.
Gate 3 (End) is AND: Output $z = X \cdot Y$.
$z = (\overline{nm})(n+m) = (\bar{n} + \bar{m})(n+m)$.
$z = \bar{n}n + \bar{n}m + \bar{m}n + \bar{m}m = 0 + \bar{n}m + n\bar{m} + 0$.
$z = \bar{n}m + n\bar{m}$. This is the XOR function.
Truth Table for XOR: 0, 1, 1, 0.
Gate 2 (Bottom) is OR: Output $Y = n+m$.
Gate 3 (End) is AND: Output $z = X \cdot Y$.
$z = (\overline{nm})(n+m) = (\bar{n} + \bar{m})(n+m)$.
$z = \bar{n}n + \bar{n}m + \bar{m}n + \bar{m}m = 0 + \bar{n}m + n\bar{m} + 0$.
$z = \bar{n}m + n\bar{m}$. This is the XOR function.
Truth Table for XOR: 0, 1, 1, 0.
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