HSC 2013-14 MX1 Marathon (archive) (5 Viewers)

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Re: HSC 2013 3U Marathon Thread



Since P is the midpoint of AB, then AP/AB = 1/2

Also since Q is the midpoint of AC, then AQ/AC = 1/2

Angle PAQ = Angle CAB (common) and so the triangles APQ and ABC are similar.

Since sides of similar triangles are in the same ratio, PQ/BC = 1/2 as well and thus PQ is half the length of BC.

Since all angles of similar triangles are equal, Angle APQ = Angle ABC. Thus PQ is parallel to BC since corresponding angles in these lines are equal.
 

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Makematics

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Re: HSC 2013 3U Marathon Thread

why cant you construct a right angled triangle and let alpha=arctanx and beta=arctan(1/x)? you add them and there is your pi/2
 

Sy123

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Sy123

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Sy123

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Re: HSC 2013 3U Marathon Thread

hmm so you're allowed to assume it's right angled?

or are you proving that it is right angled IFF the statement is true?
Contructing a right angled triangle with short sides: x and 1 can always be done. (x =/= 0 )
One angle will be atan(x), and the other one will be atan(1/x), by definition of what inverse tan means
 

Makematics

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Re: HSC 2013 3U Marathon Thread

Contructing a right angled triangle with short sides: x and 1 can always be done. (x =/= 0 )
One angle will be atan(x), and the other one will be atan(1/x), by definition of what inverse tan means
alright then.
i was just wondering, if you use the inverse tan rule for that question -->
arctan(a)+arctan(b)=arctan( (a+b)/(1-ab) ) and it is undefined, is that enough to say that the angle is pi/2, or is that just bullshitting it?
 

Sy123

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Re: HSC 2013 3U Marathon Thread

alright then.
i was just wondering, if you use the inverse tan rule for that question -->
arctan(a)+arctan(b)=arctan( (a+b)/(1-ab) ) and it is undefined, is that enough to say that the angle is pi/2, or is that just bullshitting it?
It may open the door to rigour issues, I'm not sure whether it is allowed or not to do so, and then make the denominator of the RHS zero (i.e. ab=1)

An alternative is to add to both sides, so on the right hand side you have pi/2 + pi/4 = 3pi/4
On the RHS you may be able to add it using an identity similar to the one you jsut wrote but with 3 tans instead
 

Makematics

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Re: HSC 2013 3U Marathon Thread

It may open the door to rigour issues, I'm not sure whether it is allowed or not to do so, and then make the denominator of the RHS zero (i.e. ab=1)

An alternative is to add to both sides, so on the right hand side you have pi/2 + pi/4 = 3pi/4
On the RHS you may be able to add it using an identity similar to the one you jsut wrote but with 3 tans instead
yeah that's true. well ill stick to the right angled triangle.
 

Sy123

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Re: HSC 2013 3U Marathon Thread

4U people please refrain from answering this one unless considerable time has passed.





 

RealiseNothing

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Re: HSC 2013 3U Marathon Thread

why cant you construct a right angled triangle and let alpha=arctanx and beta=arctan(1/x)? you add them and there is your pi/2
I didn't even think of that, that's so much better than what I did.
 

HeroicPandas

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Re: HSC 2013 3U Marathon Thread



By differentiating and integrating it prove that:

 
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