KCET · Maths · Matrices
If \(x\left[\begin{array}{l}3 \\ 2\end{array}\right]+y\left[\begin{array}{r}1 \\ -1\end{array}\right]=\left[\begin{array}{l}15 \\ 5\end{array}\right]\), then the value of \(x\) and \(y\) are
- A \(x=4, y=-3\)
- B \(x=-4, y=-3\)
- C \(x=-4, y=3\)
- D \(x=4, y=3\)
Answer & Solution
Correct Answer
(D) \(x=4, y=3\)
Step-by-step Solution
Detailed explanation
We have,
\(\begin{aligned} & x\left[\begin{array}{l}3 \\ 2\end{array}\right]+y\left[\begin{array}{c}1 \\ -1\end{array}\right]=\left[\begin{array}{c}15 \\ 5\end{array}\right] \\ & {\left[\begin{array}{l}3 x \\ 2 x\end{array}\right]+\left[\begin{array}{c}y \\ -y\end{array}\right]=\left[\begin{array}{c}15 \\ 5\end{array}\right]} \\ & {\left[\begin{array}{l}3 x+y \\ 2 x-y\end{array}\right]=\left[\frac{15}{5}\right]}\end{aligned}\)
\(3 x+y=15\)
\(2 x-y=5\)
Adding Eqs. (i) and (ii), we get
\(5 x=20 \Rightarrow x=4\)
So, \(\quad y=15-3 x\)
[From Eq. (i)]
\(y=15-3 \times 4=3\)
\(\begin{aligned} & x\left[\begin{array}{l}3 \\ 2\end{array}\right]+y\left[\begin{array}{c}1 \\ -1\end{array}\right]=\left[\begin{array}{c}15 \\ 5\end{array}\right] \\ & {\left[\begin{array}{l}3 x \\ 2 x\end{array}\right]+\left[\begin{array}{c}y \\ -y\end{array}\right]=\left[\begin{array}{c}15 \\ 5\end{array}\right]} \\ & {\left[\begin{array}{l}3 x+y \\ 2 x-y\end{array}\right]=\left[\frac{15}{5}\right]}\end{aligned}\)
\(3 x+y=15\)
\(2 x-y=5\)
Adding Eqs. (i) and (ii), we get
\(5 x=20 \Rightarrow x=4\)
So, \(\quad y=15-3 x\)
[From Eq. (i)]
\(y=15-3 \times 4=3\)
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