In the figure, ABCD is a quadrilateral. A line DP drawn parallel to diagonal AC from point D, meet BC produced at P. Prove that: are of `Delta ABP = " area of " square ABCD`

In the figure, ABCD is a quadrilateral. A line DP drawn parallel to di

1.	In the figure, ABCD is a quadrilateral. A line DP drawn parallel to diagonal AC from point D, meet BC produced at P. Prove that: are of `Delta ABP = " area of " square ABCD`
Answer» Here `AC\| \|DP` (given) `DeltaACP` and `DeltaACD` are on same base AC and between the same parallel lines AC and DP. `therefore` area of `DeltaACP=` area of `squareABCD` Adding area of `Delta ABC` on both sides. area of `DeltaACP+` area of `DeltaABC=` area of `DeltaACD+` area of `DeltaABC` `rArr` area of `DeltaABP=` area of `square ABCD`.

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In the figure, ABCD is a quadrilateral. A line DP drawn parallel to diagonal AC from point D, meet BC produced at P. Prove that: are of `Delta ABP = " area of " square ABCD`

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