Draw a quadrilateral in the Cartesian plane, whose vertices are $(- 4, 5), (0, 7), (5, - 5)$ and $(- 4, - 2)$ . Also, find its area.

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Solution

$A (A B C D) = A (△ A B C) + A (△ A C D)$

$(- 4, 5) \equiv (x_{1}, y_{1}), (0, 7) \equiv (x_{2}, y_{2}), (5, - 5) \equiv (x_{3}, y_{3})$

Now, area of $△ A B C$

$= \frac{1}{2} | x_{1} (y_{2} - y_{3}) + x_{2} (y_{3} - y_{2}) + x_{3} (y_{1} - y_{2}) |$

$= \frac{1}{2} | - 4 (7 + 5) + 0 (- 5 - 5) + 5 (5 - 7) |$

$= \frac{1}{2} | - 4 (12) + 5 (- 2) |$

$= \frac{1}{2} | - 48 - 10 |$

$= \frac{1}{2} | - 58 |$

$= \frac{1}{2} \times 58$

$= 29$ sq.units

Area of $△ A C D$

$= \frac{1}{2} | - 4 (- 5 + 2) + 5 (- 2 - 5) + (- 4) (5 + 5) |$

$= \frac{1}{2} | - 4 (- 3) + 5 (- 7) - 4 (10) |$

$= \frac{1}{2} | 12 - 35 - 40 |$

$= \frac{1}{2} | - 63 |$

$= \frac{63}{2}$ sq.units

So, area ( $A B C D$ ) $= (29 + \frac{63}{2})$

$= \frac{58 + 63}{2}$

$= \frac{121}{2}$ sq.units

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