Prove that if midpoints of non-parallel sides of a trapezium are joined, this line is parallel to parallel sides of the trapezium?

1 Answer
Shwetank Mauria
Mar 7, 2017

For proof see below.

Explanation:

Basic Proportionality Theorem states that if a line is drawn parallel to one side of a triangle and it intersects the other two sides at two distinct points then it divides the two sides in the same ratio.

Reverse is also true that is, if a line divides the two sides of a triangle in the same ratio, then it is parallel to the third side.

Now let us revert to the problem. Let #ABDC# be the trapezium with parallel sides #AB# and #CD# and non-parallel sides #AC# and #BD#, whose mid-points are #E# and #F# respectively. #EF# are joined. We have to prove that #EF#||#CD#.

For this let us join #AF# and produce it to meet extended #CD# at #G#.
enter image source here
Now in #Deltas# #ABF# and #DGF#, we have

#BF=DF# (as #F# is midpoint of #BD#)

#/_ABF=/_FDG# (alternate opposite angles) and

#/_BFA=/_DFG# (vertically opposite angles)

Therefore #DeltaABF-=DeltaDGF# (ASA)

Hence, #AF=FG# and in #DeltaACG#,

as #AE=EC# and #AF=FG# i.e. #(AE)/(EC)=(AF)/(FG)#

and hence #EF#||#CD#||#AB#

Quod Erat Demonstrandum

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