MHT CET · Maths · Matrices
Suppose A is any \(3 \times 3\) non-singular matrix and \((\mathrm{A}-3 \mathrm{I})(\mathrm{A}-5 \mathrm{I})=0\) where \(\mathrm{I}=\mathrm{I}_3\) and \(\mathrm{O}=\mathrm{O}_3\). Here \(\mathrm{O}_3\) represent zero matrix of order 3 and \(\mathrm{I}_3\) is an identity matrix of order 3 . If \(\alpha \mathrm{A}+\beta \mathrm{A}^{-1}=4 \mathrm{I}\), then \(\alpha+\beta\) is equal to
- A 13
- B 7
- C 12
- D 8
Answer & Solution
Correct Answer
(D) 8
Step-by-step Solution
Detailed explanation
\(\begin{array}{ll}
& \text {Given that }(A-3 I)(A-5 I)=0 \\
\therefore & A^2-3 A-5 A+15 I=0 \\
\therefore & A^2-8 A+15 I=0 \\
\therefore & A^2+15 I=8 A
\end{array}\)
Multiplying entire equation by \(\frac{A^{-1}}{2}\), we get
\(\frac{1}{2} A+\frac{15}{2} A^{-1}=4 I\)
Comparing with \(\alpha \mathrm{A}+\beta \mathrm{A}^{-1}=4 \mathrm{I}\), we get
\(\begin{aligned}
& \alpha=\frac{1}{2} \text { and } \beta=\frac{15}{2} \\
\therefore \quad & \alpha+\beta=\frac{1}{2}+\frac{15}{2}=8
\end{aligned}\)
& \text {Given that }(A-3 I)(A-5 I)=0 \\
\therefore & A^2-3 A-5 A+15 I=0 \\
\therefore & A^2-8 A+15 I=0 \\
\therefore & A^2+15 I=8 A
\end{array}\)
Multiplying entire equation by \(\frac{A^{-1}}{2}\), we get
\(\frac{1}{2} A+\frac{15}{2} A^{-1}=4 I\)
Comparing with \(\alpha \mathrm{A}+\beta \mathrm{A}^{-1}=4 \mathrm{I}\), we get
\(\begin{aligned}
& \alpha=\frac{1}{2} \text { and } \beta=\frac{15}{2} \\
\therefore \quad & \alpha+\beta=\frac{1}{2}+\frac{15}{2}=8
\end{aligned}\)
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