Show that the diagonals of a parallelogram divide it into four triangles of equal area.
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Solution
We know that diagonals of parallelogram bisect each other.
Therefore, O is the mid-point of AC and BD.
BO is the median in ΔABC. Therefore, it will divide it into two triangles of equal areas.
∴ar(ΔAOB)=ar(ΔBOC)...(1)
In ΔBCD,CO is the median. ∴ar(ΔBOC)=ar(ΔCOD)...(2)
Similarly, ar(ΔCOD)=ar(ΔAOD)...(3)
From equations (1), (2), and (3), we obtain ar(ΔAOB)=ar(ΔBOC)=ar(ΔCOD)=area(ΔAOD)
Therefore, it is evident that the diagonals of a parallelogram divide it into four triangles of equal area.