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Question
ABCD is a parallelogram and E and F are mid-points of AD and BC respectively. P is any point on AB. If area of ΔEDF=16 cm2, then find the area of ( ΔAEP+ ΔBFP) [3 MARKS]
ABCD is a parallelogram and E and F are mid-points of AD and BC respectively. P is any point on AB. If area of ΔEDF=16 cm2, then find the area of ( ΔAEP+ ΔBFP) [3 MARKS]
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Solution
Concept : 1 Mark
Application : 1 Mark
Calculation : 1 Mark
Given that area of ΔDEF = 16 cm2
ΔDEF and parallelogram DEFC are on same bases and same parallels.
So, ar (DEFC)= 2 X ar of ΔDEF = 32 cm2
As E and F are mid points of AD and BC,
ar (DEFC) = ar(EABF)= 32 cm2
Again triangle PEF and parallelogram EABF are on same bases and same parallels.
So, ar (PEF) = 1/2 X ar(EABF)=16 cm2
Now, ar (ΔAEP) + ar (ΔPFB) + ar (PEF) = ar(EABF)
ar (ΔAEP) + ar (ΔPFB) + 16 cm2 = 32 cm2
ar (ΔAEP) + ar (ΔPFB) = 16 cm2
Concept : 1 Mark
Application : 1 Mark
Calculation : 1 Mark
Given that area of ΔDEF = 16 cm2
ΔDEF and parallelogram DEFC are on same bases and same parallels.
So, ar (DEFC)= 2 X ar of ΔDEF = 32 cm2
As E and F are mid points of AD and BC,
ar (DEFC) = ar(EABF)= 32 cm2
Again triangle PEF and parallelogram EABF are on same bases and same parallels.
So, ar (PEF) = 1/2 X ar(EABF)=16 cm2
Now, ar (ΔAEP) + ar (ΔPFB) + ar (PEF) = ar(EABF)
ar (ΔAEP) + ar (ΔPFB) + 16 cm2 = 32 cm2
ar (ΔAEP) + ar (ΔPFB) = 16 cm2
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