Without using the Pythagoras theorem, show that the points $(4, 4), (3, 5)$ and $(1, 1)$ are the vertices of a right angled triangle

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Solution

Given vertices of the triangle are $A (4, 4), B (3, 5)$ and $C (- 1, - 1)$
We know that slope of line passing through the points $(x_{1}, y_{1})$ and $(x_{2}, y_{2})$ is given by
$m = \frac{y_{2} - y_{1}}{x_{2} - x_{1}}, x_{2} \neq x_{1}$
Slope of $A B$ i.e. $m_{1} = \frac{5 - 4}{3 - 4} = - 1$
Slope of $B C$ i.e. $m_{2} = \frac{- 1 - 5}{- 1 - 3} = \frac{- 6}{- 4} = \frac{3}{2}$
Slope of $C A$ i.e. $m_{3} = \frac{4 + 1}{4 + 1} = \frac{5}{5} = 1$
Clearly, $m_{1} m_{3} = - 1$
$\Rightarrow$ line segments $A B$ and $C A$ are perpendicular to each other i.e; the given triangle is right angled at $A (4, 4)$ .
Thus the points $(4, 4), (3, 5)$ and $(1, 1)$ are the vertices of a right angled triangle.

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