HSC 2016 MX1 Marathon (archive) (1 Viewer)

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Drsoccerball

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Re: HSC 2016 3U Marathon

NEXT QUESTION:



I'll tone the difficulty back down after this one.
LOL only 5 people in the state (apparently) in extension 2 got this right and there were steps LOL... I also don't think reverse induction is 3U or even 4U difficulty...
 

calamebe

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Re: HSC 2016 3U Marathon

Well I don't have an answer to the latest one (yet :)) but I finally did part g) of the other question. You just let d = 0 and the area is root(s(s-a)(s-b)(s-c)), and the property of being a cyclic triangle is not required because every triangle is a cyclic triangle.
 

leehuan

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Re: HSC 2016 3U Marathon

Do you really need reverse induction to prove it?

Though, I was thinking about whether or not that one was too harsh lol, I'll post a new question anyway if even 2 days later nobody has come up with a solution.
 

Paradoxica

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Re: HSC 2016 3U Marathon

LOL only 5 people in the state (apparently) in extension 2 got this right and there were steps LOL... I also don't think reverse induction is 3U or even 4U difficulty...
There is a more direct method of induction that doesn't involve forwards-backwards induction. The proof is on Wikipedia.
 

leehuan

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Re: HSC 2016 3U Marathon

There is a more direct method of induction that doesn't involve forwards-backwards induction. The proof is on Wikipedia.
Except, y u do dis...
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kawaiipotato

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Re: HSC 2016 3U Marathon

There is a more direct method of induction that doesn't involve forwards-backwards induction. The proof is on Wikipedia.
Is there a limk to the backwards induction proof? Or is it on Wikipedia?
 

relativity1

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Re: HSC 2016 3U Marathon

Except, y u do dis...
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NEXT QUESTION:



equation of pq = y=((p+q)/2)x - apq
For this to be a focal chord must pass through o,a
sub o,a --> a=-apq therefore pq=-1 (not too sure if this would count as proof that its a focal chord but if i recall the textbook states this is general form)

b)d(1/4a.x^2)/dx =x/2a
subbing 2ap into x/2a = p
tangent P =
y-ap^2=p(x-2ap) ---> y=xp-ap^2
similarly for q ---> y=xq-aq^2
solving simultaneously
xq-aq^2=xp-ap^2
x(q-p)=a(q-p)(q+p)
x=a(p+q)
therefore since y=xq-aq^2
y=aq(p+q)-aq^2
=aqp+aq^2-aq^2
=aqp
therefore point of intersection is (a(p+q),apq)
since y=apq and from a) we know pq=-1
therefore locus is y=-a
 

leehuan

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Re: HSC 2016 3U Marathon

Yep
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Troll time
 

VBN2470

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Re: HSC 2016 3U Marathon

ANSWER:

NEW QUESTION:

Prove that from first principles.
 

leehuan

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Re: HSC 2016 3U Marathon

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leehuan

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Re: HSC 2016 3U Marathon

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leehuan

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Re: HSC 2016 3U Marathon

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