Math, asked by Zack4203, 1 year ago

EFGH is a parallelogram with diagonals EG and FH meeting at a point X.show that ar (∆EXF)=ar(∆EXH)=ar(∆GXF)=ar(∆HXG)

sunil205: i do not understand please give the diagram

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Answered by myselfyiri
1
Hey, here's your answer..
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