Find the lengths of the medians of a triangle ABC whose vertices are A(7, –3), B(5, 3) and C(3, –1). [4 MARKS]

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Solution

Formula: 1 Mark
Concept: 1 Mark
Answer: 2 Marks

Let D, E, F be the mid-points of the sides BC, CA and AB respectively.

Then, the coordinates of D, E and F are

$D (\frac{5 + 3}{2}, \frac{3 - 1}{2}) = D (4, 1),$

$E (\frac{3 + 7}{2}, \frac{- 1 - 3}{2}) = E (5, - 2)$

and $F (\frac{7 + 5}{2}, \frac{- 3 + 3}{2}) = F (6, 0)$

Distance between the points is given by
$\sqrt{{(x_{1} - x_{2})}_{1}^{2} + {(y_{1} - y_{2})}_{1}^{2}}$
$∴ A D = \sqrt{(7 - 4)^{2} + (- 3 - 1)^{2}}$

$\Rightarrow A D = \sqrt{9 + 16} = 5 u n i t s$

$B E = \sqrt{(5 - 5)^{2} + (- 2 - 3)^{2}}$

$\Rightarrow B E = \sqrt{0 + 25} = 5 u n i t s$

and, $C F = \sqrt{(6 - 3)^{2} + (0 + 1)^{2}}$

$\Rightarrow C F = \sqrt{9 + 1} = \sqrt{10} u n i t s$

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Find the lengths of the medians AD and BE of $△$ ABC whose vertices are A(7, -3), B(5, 3)and C(3, -1).

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A (7, - 3), B (5, 3)

C (3, - 1)

∆ A B C

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∆ A B C

∆ A B C

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