state and prove basic proportionality theorem
Answers
the same can be found in ssc 10th grade geom txt bk in first chp
hi mate,
PROOF OF BPT
Given: In ΔABC, DE is parallel to BC
Line DE intersects sides AB and AC in points D and E respectively.
To Prove:
AD AE
----- = -----
DB AC
Construction: Draw EF ⟂ AD and DG⟂ AE and join the segments BE and CD.
Proof:
Area of Triangle= ½ × base × height
In ΔADE and ΔBDE,
Ar(ADE) ½ ×AD×EF AD
----------- = ------------------ = ------ .....(1)
Ar(DBE) ½ ×DB×EF DB
In ΔADE and ΔCDE,
Ar(ADE) ½×AE×DG AE
------------ = --------------- = ------ ........(2)
Ar(ECD) ½×EC×DG EC
Note that ΔDBE and ΔECD have a common base DE and lie between the same parallels DE and BC. Also, we know that triangles having the same base and lying between the same parallels are equal in area.
So, we can say that
Ar(ΔDBE)=Ar(ΔECD)
Therefore,
A(ΔADE) A(ΔADE)
------------- = ---------------
A(ΔBDE) A(ΔCDE)
Therefore,
AD AE
----- = -----
DB AC
Hence Proved.