Proof (1 Viewer)

=)(= · Oct 30, 2021

△ABC is isosceles. (AB = BC).

AB is produced to D, and BE is drawn through B parallel to the base AC.

Prove that BE bisects ∠CBD.

Pro

Drongoski · Oct 30, 2021

/_ BAC = /_ DBE = @ say (corresp angles, AC//BE)

/_ EBC = /_ BCA = # say (alt. angles, AC//BE)

Now /_ BAC = /_ BCA (base angles of isosceles triangle ABC)

.: @ = #

i.e. /_ DBE = /_ EBC

.: BE bisects angle CBD.

QED

5uckerberg · Oct 30, 2021

There are many ways to do this Q. Drongoski pointed out one way but I have a different way

$\angle{BCA}=\angle{EBC}$ alternate angles on $\parallel$ lines 1
$\angle{BCA}=\angle{BAC}$ angles in an isosceles triangle. 2
$\angle{BCA}+\angle{BAC}=\angle{CBD}$ external angle is the sum of two internal angles. 3
Using 1 and sub it into 3 we will have $\angle{BAC}=\angle{EBD}$
As such we will see that BE bisects $\angle{CBD}$

CM_Tutor · Oct 30, 2021

It could also be made needlessly complex by asking it in MX1 by vector methods

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