HSC 2016 MX1 Marathon (archive) (1 Viewer)

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leehuan

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Re: HSC 2016 3U Marathon

Not sure what has happened but I have tried accessing your link but can't read it from 2 computers (a uni) and my mac book (which I use regularly)
Question's already done, but for your reference LaTeX wasn't working.
 

InteGrand

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Re: HSC 2016 3U Marathon



the answer is y=38 degrees. Anyone can explain the step by step with reasoning?
Use the following facts:

• We can find angle CBE using the fact that adjacent angles on a straight line add up to 180 degrees (that is, are supplementary).

• Then we can find angle BCE isn't angle sum of triangle BCE.

• But angle DCE equals angle BCE as we are told that CE bisects angle BCD. So we now have angle DCE too.

• Angle DCE + y deg = 95 deg (exterior angle of triangle DCE), so we have y = 95 – angle DCE, and we found angle DCE above.
 

davidgoes4wce

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Re: HSC 2016 3U Marathon

Not sure if anyone here uses the Extension 1 (Year 11) 2/3 Unit text but there is a mistake on Q2a page 182, the answer should be : -16/(2x+3)^5 (the derivative of y=2/(2x+3)^4)

Not -24/(2x+3)^5 as stated in the answer.
 

InteGrand

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Re: HSC 2016 3U Marathon

Not sure if anyone here uses the Extension 1 (Year 11) 2/3 Unit text but there is a mistake on Q2a page 182, the answer should be : -16/(2x+3)^5 (the derivative of y=2/(2x+3)^4)

Not -24/(2x+3)^5 as stated in the answer.
Which textbook is this (author)?
 

leehuan

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Re: HSC 2016 3U Marathon

I think that textbook is more frequently used for the purpose of study. The contents of it are quite simplistic.
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So why are you putting errors here instead of making your own thread?
 

leehuan

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Re: HSC 2016 3U Marathon

Grove got repetitive cause it's Grove. Worst textbook ever.

Dude just so you know though every one of us knows your intention is pure. Nobody's gonna yell at you for your own thread. It's just a bit derailing this one
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Yeah, looks like that textbook writer derped and thought that the x was on the 3.
 

Parvee

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Re: HSC 2016 3U Marathon



Can't seem to do this one, the solution is x=-0.5 and x=1
The one you posted has complex solutions

I think you meant it with a +
But yeah just multiply everything by x^2 and solve 2x^2-x-1=0
 

davidgoes4wce

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Re: HSC 2016 3U Marathon

The one you posted has complex solutions

I think you meant it with a +
But yeah just multiply everything by x^2 and solve 2x^2-x-1=0
I got it from Dr Max Shurs book from page 50 Q1a:



So far have noticed quite a few mistakes from the text. You are right there should be a positive in front of 1/x^2, as I also had a complex solution.
 

integral95

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Re: HSC 2016 3U Marathon

using the angle between 2 line formula



since the lines are perpendicular, then the angle between the lines make a right angle or 90 degrees

that makes LHS undefined (tan90), so that would mean RHS is undefined.

RHS is undefined if the denominator is 0 i.e



Lel it's probably not the best.
 

leehuan

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Re: HSC 2016 3U Marathon

using the angle between 2 line formula



since the lines are perpendicular, then the angle between the lines make a right angle or 90 degrees

that makes LHS undefined (tan90), so that would mean RHS is undefined.

RHS is undefined if the denominator is 0 i.e



Lel it's probably not the best.
A reference to the limit as x->0 from the right of 1/x could be helpful
-------------------------------------------------------------
NEXT QUESTION:
Let's bring the questions back to the rote for a moment:
 

DatAtarLyfe

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Re: HSC 2016 3U Marathon

a) Let P(x) = D(x)Q(x) + R(x), where D(x) is the divisor function, Q(x) is the quotient function and R(x) is the remainder function
Let D(x) = (x - a)
P(x) = (x - a)Q(x) + R(x)
P(a) = (a - a)Q(a) + R(a)
P(a) = R(a)
Hence, when a polynomial P(x) is divided by (x - a), the remainder is P(a)
b) P(x) = (x - 3)(x + 10) + 21x - 234
Using remainder theorem, sub x = 3
P(3) = (3 - 3)(3 + 10) + 21(3) - 234
P(3) = 21(3) - 234 = -171
P(x) = (x - 3)Q(x) + R(x)
using remainder theorem, sub x = 3
P(3) = (3 - 3)Q(3) + R(3) = R(3)
However, P(3) = -171 (from above)
Therefore R(x) = -171
 

leehuan

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Re: HSC 2016 3U Marathon

a) Let P(x) = D(x)Q(x) + R(x), where D(x) is the divisor function, Q(x) is the quotient function and R(x) is the remainder function
Let D(x) = (x - a)
P(x) = (x - a)Q(x) + R(x)
P(a) = (a - a)Q(a) + R(a)
P(a) = R(a)
Hence, when a polynomial P(x) is divided by (x - a), the remainder is P(a)
b) P(x) = (x - 3)(x + 10) + 21x - 234
Using remainder theorem, sub x = 3
P(3) = (3 - 3)(3 + 10) + 21(3) - 234
P(3) = 21(3) - 234 = -171
P(x) = (x - 3)Q(x) + R(x)
using remainder theorem, sub x = 3
P(3) = (3 - 3)Q(3) + R(3) = R(3)
However, P(3) = -171 (from above)
Therefore R(x) = -171
a) - Good
b) - Not sure what happened to your working. The logic is that:

P(x) = (x-3)(x+10)Q(x) + (21x-234)

A direct substitution of x=3 was sufficient to establish that the remainder is -171
 
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