MHT CET · Maths · Mathematical Reasoning
If \(\mathrm{q}\) is false and \(\mathrm{p} \wedge \mathrm{q} \leftrightarrow \mathrm{r}\) is true, then is a tautology.
- A \(\mathrm{p} \vee \mathrm{r}\)
- B \((\mathrm{p} \wedge \mathrm{r}) \rightarrow \mathrm{p} \vee \mathrm{r}\)
- C \((\mathrm{p} \vee \mathrm{r}) \rightarrow \mathrm{p} \wedge \mathrm{r}\)
- D \(\mathrm{p} \wedge \mathrm{r}\)
Answer & Solution
Correct Answer
(B) \((\mathrm{p} \wedge \mathrm{r}) \rightarrow \mathrm{p} \vee \mathrm{r}\)
Step-by-step Solution
Detailed explanation
\(\mathrm{q}\) is false and \(\mathrm{p} \wedge \mathrm{q} \leftrightarrow \mathrm{r}\) is true
\(\Rightarrow p \wedge q \equiv F\) and \(r \equiv F\)
\(\Rightarrow \mathrm{p} \equiv \mathrm{T}\) or \(\mathrm{F}, \mathrm{q} \equiv \mathrm{F}\) and \(\mathrm{r} \equiv \mathrm{F}\)
(1) \(\mathrm{p} \vee \mathrm{r} \equiv \mathrm{T}\) or \(\mathrm{F}\)
(2) \((\mathrm{p} \wedge \mathrm{r}) \rightarrow(\mathrm{p} \vee \mathrm{r}) \equiv \mathrm{F} \rightarrow(\mathrm{T}\) or \(\mathrm{F}) \equiv \mathrm{T}\)
(3) \((\mathrm{p} \vee \mathrm{r}) \rightarrow(\mathrm{p} \wedge \mathrm{r}) \equiv(\mathrm{T}\) or \(\mathrm{F}) \rightarrow \mathrm{F} \equiv \mathrm{T}\) or \(\mathrm{F}\)
(4) \(\mathrm{p} \wedge \mathrm{r} \equiv \mathrm{F}\)
\(\Rightarrow p \wedge q \equiv F\) and \(r \equiv F\)
\(\Rightarrow \mathrm{p} \equiv \mathrm{T}\) or \(\mathrm{F}, \mathrm{q} \equiv \mathrm{F}\) and \(\mathrm{r} \equiv \mathrm{F}\)
(1) \(\mathrm{p} \vee \mathrm{r} \equiv \mathrm{T}\) or \(\mathrm{F}\)
(2) \((\mathrm{p} \wedge \mathrm{r}) \rightarrow(\mathrm{p} \vee \mathrm{r}) \equiv \mathrm{F} \rightarrow(\mathrm{T}\) or \(\mathrm{F}) \equiv \mathrm{T}\)
(3) \((\mathrm{p} \vee \mathrm{r}) \rightarrow(\mathrm{p} \wedge \mathrm{r}) \equiv(\mathrm{T}\) or \(\mathrm{F}) \rightarrow \mathrm{F} \equiv \mathrm{T}\) or \(\mathrm{F}\)
(4) \(\mathrm{p} \wedge \mathrm{r} \equiv \mathrm{F}\)
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