If the point $P (x, 3)$ is equidistant from the points $A (7, - 1)$ and $B (6, 8)$ , find the value of $x$ and find the distance $A P$ .

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Solution

Given $\Rightarrow$ $(P A)^{2} = (P B)^{2}$

So by distance formula, we have,
$\begin{matrix} (x - 7)^{2} + (3 + 1)^{2} & = (x - 6)^{2} + (3 - 8)^{2} x^{2} + 49 - 14 x + 16 & = x^{2} + 36 - 12 x + 25 49 + 16 - 36 - 25 & = 2 x 65 - 61 & = 2 x 2 x & = 4 x & = 2 \end{matrix}$

Distance:
$A P = \sqrt{(2 - 7)^{2} + (- 1 - 3)^{2}}$ (by distance formula)
$= \sqrt{(- 5)^{2} + (- 4)^{2}}$
$= \sqrt{25 + 16}$
$= \sqrt{41}$

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