Find $p$ for which given equation has unique solution
$4 x + p y + 8 = 0$
$2 x + 2 y + 2 = 0$

Open in App

Solution

$4 x + p y + 8 = 0$ ------- ( 1 )
$2 x + 2 y + 2 = 0$ ------- ( 2 )
$\Rightarrow$ $4 x + p y + 8 = 0$ is comparing with $a_{1} x + b_{1} y + c_{1} = 0$
$∴$ We get, $a_{1} = 4, b = p, c_{1} = 8$
$\Rightarrow$ $2 x + 2 y + 2 = 0$ is comparing with $a_{2} x + b_{2} y + c_{2} = 0$
$∴$ We get, $a_{2} = 2, b_{2} = 2, c_{2} = 2$
$\Rightarrow$ So, $a_{1} = 4, b_{1} = p, c_{1} = 8$ and $a_{2}, b_{2} = 2, c_{2} = 2$
It is given that equation has unique number of solutions,
$\frac{a_{1}}{a_{2}} \neq \frac{b_{1}}{b_{2}}$
$\Rightarrow$ $\frac{4}{2} \neq \frac{p}{2}$
$\Rightarrow$ $p \neq \frac{4}{2} \times 2$
$\Rightarrow$ $p \neq 4$
$\Rightarrow$ For all values of $p$ , except $4$ , the given pair of equations will have a unique solution.

Suggest Corrections

Similar questions

p

4 x + p y + 8 = 0

2 x + 2 y + 2 = 0

p

4 x + p y + 8 = 0

2 x + 2 y + 2 = 0

p

8 x - p y + 7 = 0; 4 x - 2 y + 3 = 0

Find the value of $k$ for which following system of equations has a unique solution:
$4 x + k y + 8 = 0$
$2 x + 2 y + 2 = 0$

p

2 x + p y + 6 z = 8, x + 2 y + q z = 5, x + y + 3 z = 4

Join BYJU'S Learning Program