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प्रश्न
Prove that abscissa of a point P which is equidistant from points with coordinates A(7, 1) and B(3, 5) is 2 more than its ordinate.
योग
उत्तर
∴ d = `sqrt((x_2 - x_1)^2 = (y_2 - y_1)^2)`
Distance PA = Distance PB
`sqrt ((7 - x)^2 + (1 - y)^2) = sqrt ((3 - x)^2 + (5 - y)^2)`
⇒ 49 + x2 − 14x + 1 + y2 − 2y = 9 + x2 − 6x + 25 + y2 − 10y
⇒ −14x − 2y + 6x + 10y = 34 − 50
⇒ −8x + 8y = −16
⇒ −8 (x − y) = −16
⇒ x − y = 2
⇒ x = 2 + y
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