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HSC 2012 MX1 Marathon #1 (archive) (2 Viewers)

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Re: 2012 HSC MX1 Marathon

All this maths seems rather interesting. Can't wait for Extension 1 Prelims and HSC.
 

deswa1

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Re: 2012 HSC MX1 Marathon

lol nobody has yet tried my question ='(
Don't worry Mr. Carrotsticks. I just have to finish my belonging essay (I know :(...) and then I'll have a go.
 

SpiralFlex

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Re: 2012 HSC MX1 Marathon

I leave you with more things to ponder. :)

















Have to dash and do some Physics, I will attempt the questions afterwards. (Be back at 9 PM) Keep them coming!
 

tywebb

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Re: 2012 HSC MX1 Marathon

2 and e2



Next question:

 
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tywebb

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Re: 2012 HSC MX1 Marathon

Correct! But Ext. 1 students can do it.
 

Carrotsticks

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Re: 2012 HSC MX1 Marathon

Correct! But Ext. 1 students can do it.
Use the tan(A+B) thing where tanA=5 and tanB = 3, but twice. After some simplification, we have tan(A+B+C) = 0.

Thus A + B + C = arctan(0) = pi

I'm only saying this because my tablet just broke down lol.
 

jdnRof

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Re: 2012 HSC MX1 Marathon

I'd be very careful about tanning and then arc tanning it since you need to consider the restrictions between -pi/2 and pi/2. Probably should include an argument about it.

Just to clarify carrotsticks, is one of your steps:

arctan (-4/7) + arctan (4/7)?
 

RishBonjour

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Re: 2012 HSC MX1 Marathon

Did you guys finish the whole course already? FUCK I'm SO BEHIND

ohh yeah, and lazy
 

tywebb

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Re: 2012 HSC MX1 Marathon

Here's James Ruse's solution:



But it can be generalised as follows:



And of course, James Ruse's result follows by letting x=4, y=1.
 
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zeebobDD

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Re: 2012 HSC MX1 Marathon

Last Q of one of our mx1 papers ;

Two circles intersect at A and B. P is a point on the first circle and Q is a point on the second circle such that PAQ is a straight line. C is a point on the second circle. The tangent to the first circle at P meets QC produced to R.

Prove that PBCR is a cyclic quadrilateral
 

Sanical

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Re: 2012 HSC MX1 Marathon

Last Q of one of our mx1 papers ;

Two circles intersect at A and B. P is a point on the first circle and Q is a point on the second circle such that PAQ is a straight line. C is a point on the second circle. The tangent to the first circle at P meets QC produced to R.

Prove that PBCR is a cyclic quadrilateral


Construct BA and point D (I forgot to write point Q which is produced from PA and lies on second circle)
let /_DPB = x
/_PAB = x (angle between tangent and chord equal to angle in alternate segment)
/_BAQ = 180 - x (adjacent supplementary angles)
/_BCQ = 180 - x (angles equal on the same arc)
/_RCB = x (adjacent supplementary angles)

Therefore PBCR is cyclic since angle is equal to opposite external angle /_RCB=/_DPB
 

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DL9559

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Re: 2012 HSC MX1 Marathon

Yahoo hoo! This one looks fun.

Hmmm...

1/2(ln(x^2+4)) + tan*-1 (x/2) + c (BTW that tan thing is meant to be inverse tan.)

:)
 

Carrotsticks

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Re: 2012 HSC MX1 Marathon

Yahoo hoo! This one looks fun.

Hmmm...

1/2(ln(x^2+4)) + tan*-1 (x/2) + c (BTW that tan thing is meant to be inverse tan.)

:)
For the record, to indicate inverse tan, we use arctan (x)

ie: arctan (1) = pi/4

EDIT: I'm a sped and typed it wrong way around.
 
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