Mathematics
In the figure (2) given below, O is any point inside a parallelogram ABCD. Prove that
(i) area of ∆OAB + area of ∆OCD = area of || gm ABCD.
(ii) area of ∆OBC + area of ∆OAD = area of || gm ABCD.
Theorems on Area
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Answer
(i) Draw a line PQ || to AB and CD from point O.
AB || PQ and AP || BQ (Since, AD || BC)
ABQP is a || gm
Similarly,
PD || CQ and PQ || DC
PQCD is a || gm
Now, ∆OAB and || gm ABQP are on the same base AB and between same || lines AB and PQ
Area of ∆OAB = Area of ||gm ABQP …..(1)
Similarly, ∆OCD and || gm PQCD are on the same base CD and between same || lines CD and PQ
Area of ∆OCD = Area of || gm PQCD ….. (2)
Now by adding (1) and (2),
Area of ∆OAB + Area of ∆OCD = Area of || gm ABQP + Area of || gm PQCD
= [Area of || gm ABQP + Area of || gm PQCD]
= Area of || gm ABCD
Hence, proved that Area of ∆OAB + Area of ∆OCD = Area of || gm ABCD.
(ii) From figure,
⇒ Area of ∆OAB + Area of ∆OBC + Area of ∆OCD + Area of ∆OAD = Area of || gm ABCD
⇒ Area of ∆OAB + Area of ∆OCD + Area of ∆OBC + Area of ∆OAD = Area of || gm ABCD
⇒ Area of || gm ABCD + Area of ∆OBC + Area of ∆OAD = Area of || gm ABCD
⇒ Area of ∆OBC + Area of ∆OAD = Area of || gm ABCD - Area of || gm ABCD
⇒ Area of ∆OBC + Area of ∆OAD = Area of || gm ABCD.
Hence, proved that Area of ∆OBC + Area of ∆OAD = Area of || gm ABCD.
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