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Please help with these Geometry question (1 Viewer)
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Q3
Let the 2 circles intersect at A & B, with A on the line PQ, and B on RS
Let angle APR = @
.: angle PRB = 180 - @ ( APR & PRB are co-interior angles and PQ//RS)
.: angle PAB = @ (ABRP is cyclic quad, PRB + PAB = 180)
.: angle QSB = angle PAB = @ (ABSQ a cyclic quad; ext angle of a cyclic quad = interior opp angle)
.: angle PRS + angle QSR = 180 (i.e. the 2 angles are supplementary)
But PRS & QSR are co-interior angles
.: PR//QS
.: PQSR is a paralellogram (opp sides are parallel)
.: PQ = RS (opp sides of //gram)
QED
Let the 2 circles intersect at A & B, with A on the line PQ, and B on RS
Let angle APR = @
.: angle PRB = 180 - @ ( APR & PRB are co-interior angles and PQ//RS)
.: angle PAB = @ (ABRP is cyclic quad, PRB + PAB = 180)
.: angle QSB = angle PAB = @ (ABSQ a cyclic quad; ext angle of a cyclic quad = interior opp angle)
.: angle PRS + angle QSR = 180 (i.e. the 2 angles are supplementary)
But PRS & QSR are co-interior angles
.: PR//QS
.: PQSR is a paralellogram (opp sides are parallel)
.: PQ = RS (opp sides of //gram)
QED
Last edited:
Thanks a lot!! For question 2, I thought you have to prove that both pairs of opposite angles add up to 180 lol, and now I realised it's a quadrilateral so if one pair adds up to 180 then the other pair must be so too.
Anyone knows how to do question 1?
Anyone knows how to do question 1?
Are you allowed to refer to Ptolemy's theorem without proof? If so question 1b becomes trivial.
SpiralFlex
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Nope.
In that case let angle BAX=
XAC=
ACX=
Without loss of generality let AB=AC=BC=1.
Then, using the sine rule
Trig expand and simplify and it's done.
Yeah I haven't learn that XD