If the pair of straight lines $x^{2} - y^{2} + 6 x + 4 y + 5 = 0$ represents transverse and conjugate axes of the hyperbola and centre of hyberbola is $(α, β)$ , then value of $β - α$ is

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Solution

$x^{2} - y^{2} + 6 x + 4 y + 5 = 0 . . . . . (1)$
$∵ x^{2} - y^{2} = (x - y) (x + y)$
Let the seperate equation of line be $(x - y + l) (x + y + m)$
In order to find value's of $l$ and $m$ , we have to equate the coefficients of $x$ and $y$
$x^{2} - x y + l x + x y - y^{2} + l y + m x - m y + l m = 0$
$x^{2} - y^{2} + (l + m) x + (l - m) y + l m = 0 . . . . (2)$
Comparing $(1)$ & $(2)$ , we get
$l + m = 6$
$l - m = 4$
$2 l = 10$
$∴ l = 5$ and $m = 1$
So equations of axes are $x - y + 5 = 0$ and $x + y + 1 = 0$
Centre will be point of intersection of both the lines, so $x = - 3$ and $y = 2$
$∴$ Centre is $(- 3, 2) = (α, β)$
$\Rightarrow β - α = 5$

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