Find a point P on the line segment joining A(14,-5) and (-4,4), which is twice as far from A as from B

Let point P be (x, y).

Since, point P is twice as far from A as from B.

⇒ AP = 2BP

⇒ $\dfrac{AP}{BP} = \dfrac{2}{1}$

⇒ AP : BP = 2 : 1.

⇒ m₁ : m₂ = AP : PB = 2 : 1

By section-formula,

(x, y) = $\Big(\dfrac{m$1x2 + m2x1}{m1 + m2}, \dfrac{m1y2 + m2y1}{m1 + m2}\Big)

Substituting values we get :

$\Rightarrow (x, y) = \Big(\dfrac{2 \times -4+ 1 \times 14}{2 + 1}, \dfrac{2 \times 4 + 1 \times -5}{2 + 1}\Big) \\[1em] \Rightarrow (x, y) = \Big(\dfrac{-8 + 14}{3}, \dfrac{8 - 5}{3}\Big) \\[1em] \Rightarrow (x, y) = \Big(\dfrac{6}{3}, \dfrac{3}{3}\Big) \\[1em] \Rightarrow (x, y) = (2, 1).$

Hence, the coordinates of P are (2, 1).