BOS MX2 Trials discussion thread. (2 Viewers)

barbernator

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ok I will latex up some of the easier solutions and hopefully others can do some other ones. :)
 

deswa1

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What I really took away from today was that my explanations and setting out for some questions is CRAP- I need to work on clarity and flow of argument a lot. And I've got my paper so I can scan my answers to questions people have (assuming I could do that one and you can read my writing)- scanning will take a bit of time though
 

iBibah

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What I really took away from today was that my explanations and setting out for some questions is CRAP- I need to work on clarity and flow of argument a lot. And I've got my paper so I can scan my answers to questions people have (assuming I could do that one and you can read my writing)- scanning will take a bit of time though
Isn't it being marked?
 

Carrotsticks

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I marked his one early because he stayed back afterwards and wanted it marked.

Though for the most of the marking, he was watching me mark it =p
 

deswa1

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Isn't it being marked?
I marked his one early because he stayed back afterwards and wanted it marked.

Though for the most of the marking, he was watching me mark it =p
Yeah this. I'm won't tell you my mark until everyone else gets it back but yeah, what he's saying is correct- I had to explain some of my reasoning and working to him. In the HSC though I won't have this luxury hence my post earlier about improving my clarity etc. So you could probs take about 3 marks off my score and that's what I'd get in the HSC. And I'm still a bit pissed because I didn't see 2 marks worth of questions lol.
 

someth1ng

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I might not know much about the actual questions in the exam, but this is something which everyone should have taken away from the exams on Monday and Wednesday. From what I saw, most people had trouble in the exam itself, but could figure most questions out at home when they were more relaxed and thinking clearly.
Still don't have a clue about any of the questions...LOL
 

enoilgam

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Still don't have a clue about any of the questions...LOL
Its just something to consider. I have a feeling that when the answers are released, most people will be kicking themselves because of what they missed.
 

deswa1

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Did anybody manage to get a decent chunk of Q16 out or even understand what the whole question is asking?
 

barbernator

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Here is a start. 11 a)

<a href="http://www.codecogs.com/eqnedit.php?latex=\int_{0}^{1}\frac{e^{2x}-1}{e^{2x}@plus;1}dx\\\\ \int_{0}^{1}(\frac{e^x}{e^x})\frac{e^{2x}-1}{e^{2x}@plus;1}dx\\\\\\ let~u=e^x,~du=e^xdx\\\\ x=0,~u=1\\ x=1,~u=e\\\\" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\int_{0}^{1}\frac{e^{2x}-1}{e^{2x}+1}dx\\\\ \int_{0}^{1}(\frac{e^x}{e^x})\frac{e^{2x}-1}{e^{2x}+1}dx\\\\\\ let~u=e^x,~du=e^xdx\\\\ x=0,~u=1\\ x=1,~u=e\\\\" title="\int_{0}^{1}\frac{e^{2x}-1}{e^{2x}+1}dx\\\\ \int_{0}^{1}(\frac{e^x}{e^x})\frac{e^{2x}-1}{e^{2x}+1}dx\\\\\\ let~u=e^x,~du=e^xdx\\\\ x=0,~u=1\\ x=1,~u=e\\\\" /></a><a href="http://www.codecogs.com/eqnedit.php?latex=\int_{1}^{e}\frac{u^2-1}{u(u^2@plus;1)}\\\\ \int_{1}^{e}(\frac{1}{u}-\frac{-2}{u(u^2@plus;1)})\\\ \int_{1}^{e}(\frac{-1}{u}@plus;\frac{2u}{(u^2@plus;1)})\\\\ =\left [ ln(\frac{u^2@plus;1}{u}) \right ]_{1}^{e}\\\\ =-1@plus;ln(e^2@plus;1)-ln(2)" target="_blank">

<a href="http://www.codecogs.com/eqnedit.php?latex==\int_{1}^{e}\frac{u^2-1}{u(u^2@plus;1)}dx\\\\ =\int_{1}^{e}(\frac{1}{u}-\frac{-2}{u(u^2@plus;1)})dx\\\ =\int_{1}^{e}(\frac{-1}{u}@plus;\frac{2u}{(u^2@plus;1)})dx\\\\ =\left [ ln(\frac{u^2@plus;1}{u}) \right ]_{1}^{e}\\\\ =-1@plus;ln(e^2@plus;1)-ln(2)" target="_blank"><img src="http://latex.codecogs.com/gif.latex?=\int_{1}^{e}\frac{u^2-1}{u(u^2+1)}dx\\\\ =\int_{1}^{e}(\frac{1}{u}-\frac{-2}{u(u^2+1)})dx\\\ =\int_{1}^{e}(\frac{-1}{u}+\frac{2u}{(u^2+1)})dx\\\\ =\left [ ln(\frac{u^2+1}{u}) \right ]_{1}^{e}\\\\ =-1+ln(e^2+1)-ln(2)" title="=\int_{1}^{e}\frac{u^2-1}{u(u^2+1)}dx\\\\ =\int_{1}^{e}(\frac{1}{u}-\frac{-2}{u(u^2+1)})dx\\\ =\int_{1}^{e}(\frac{-1}{u}+\frac{2u}{(u^2+1)})dx\\\\ =\left [ ln(\frac{u^2+1}{u}) \right ]_{1}^{e}\\\\ =-1+ln(e^2+1)-ln(2)" /></a>

11 b) i)

<a href="http://www.codecogs.com/eqnedit.php?latex=1\equiv A(x)(3cosx@plus;2sinx)@plus;B(x)(3cosx-2sinx)\\\\ 1\equiv cosx(3A(x)@plus;3B(x))@plus;sinx(2A(x)-2B(x))\\\\ \therefore 3A(x)@plus;3B(x)=cosx~(1)\\ \therefore 2A(x)-2B(x)=sinx~(2)\\\\ from~(1),~B(x)=\frac{cosx}{3}-A(x)~sub~into~(2)\\\\ 2A(x)-\frac{2cosx}{3}@plus;2A(x)=sinx\\\\ \therefore A(x)=\frac{cosx}{6}@plus;\frac{sinx}{4}\\\\ \therefore B(x)=\frac{cosx}{6}-\frac{sinx}{4}" target="_blank"><img src="http://latex.codecogs.com/gif.latex?1\equiv A(x)(3cosx+2sinx)+B(x)(3cosx-2sinx)\\\\ 1\equiv cosx(3A(x)+3B(x))+sinx(2A(x)-2B(x))\\\\ \therefore 3A(x)+3B(x)=cosx~(1)\\ \therefore 2A(x)-2B(x)=sinx~(2)\\\\ from~(1),~B(x)=\frac{cosx}{3}-A(x)~sub~into~(2)\\\\ 2A(x)-\frac{2cosx}{3}+2A(x)=sinx\\\\ \therefore A(x)=\frac{cosx}{6}+\frac{sinx}{4}\\\\ \therefore B(x)=\frac{cosx}{6}-\frac{sinx}{4}" title="1\equiv A(x)(3cosx+2sinx)+B(x)(3cosx-2sinx)\\\\ 1\equiv cosx(3A(x)+3B(x))+sinx(2A(x)-2B(x))\\\\ \therefore 3A(x)+3B(x)=cosx~(1)\\ \therefore 2A(x)-2B(x)=sinx~(2)\\\\ from~(1),~B(x)=\frac{cosx}{3}-A(x)~sub~into~(2)\\\\ 2A(x)-\frac{2cosx}{3}+2A(x)=sinx\\\\ \therefore A(x)=\frac{cosx}{6}+\frac{sinx}{4}\\\\ \therefore B(x)=\frac{cosx}{6}-\frac{sinx}{4}" /></a>

ii)

<a href="http://www.codecogs.com/eqnedit.php?latex=\int_{0}^{\frac{\pi}{4}}\left ( \frac{\frac{cosx}{6}@plus;\frac{sinx}{4}}{3cosx-2sinx}@plus;\frac{\frac{cosx}{6}-\frac{sinx}{4}}{3cosx@plus;2sinx} \right )dx~\\\\\\ \frac{1}{12}\int_{0}^{\frac{\pi}{4}}\left ( \frac{2cosx@plus;3sinx}{3cosx-2sinx}@plus;\frac{2cosx-3sinx}{3cosx@plus;2sinx}\right )dx\\\\\\ \frac{1}{12}\left [ ln(\frac{3cosx@plus;2sinx}{3cosx-2sinx}) \right ]_{0}^{\frac{\pi}{4}}\\\\ =\frac{ln(5)}{12}" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\int_{0}^{\frac{\pi}{4}}\left ( \frac{\frac{cosx}{6}+\frac{sinx}{4}}{3cosx-2sinx}+\frac{\frac{cosx}{6}-\frac{sinx}{4}}{3cosx+2sinx} \right )dx~\\\\\\ \frac{1}{12}\int_{0}^{\frac{\pi}{4}}\left ( \frac{2cosx+3sinx}{3cosx-2sinx}+\frac{2cosx-3sinx}{3cosx+2sinx}\right )dx\\\\\\ \frac{1}{12}\left [ ln(\frac{3cosx+2sinx}{3cosx-2sinx}) \right ]_{0}^{\frac{\pi}{4}}\\\\ =\frac{ln(5)}{12}" title="\int_{0}^{\frac{\pi}{4}}\left ( \frac{\frac{cosx}{6}+\frac{sinx}{4}}{3cosx-2sinx}+\frac{\frac{cosx}{6}-\frac{sinx}{4}}{3cosx+2sinx} \right )dx~\\\\\\ \frac{1}{12}\int_{0}^{\frac{\pi}{4}}\left ( \frac{2cosx+3sinx}{3cosx-2sinx}+\frac{2cosx-3sinx}{3cosx+2sinx}\right )dx\\\\\\ \frac{1}{12}\left [ ln(\frac{3cosx+2sinx}{3cosx-2sinx}) \right ]_{0}^{\frac{\pi}{4}}\\\\ =\frac{ln(5)}{12}" /></a>
 
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deswa1

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^You made it way harder than it needed to be. If you divide top and bottom by e^x, it just falls out directly as ln|e^x+e^-x|
 
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^You made it way harder than it needed to be. If you divide top and bottom by e^x, it just falls out directly as ln|e^x+e^-x|
Genius

Can't believe I didn't see that :(

Spent ages trying to manipulate it and figure out the substitution lol
 

deswa1

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Genius

Can't believe I didn't see that :(

Spent ages trying to manipulate it and figure out the substitution lol
Yeah its one that you either see it or you don't. You're only year 11 though so you've got time to learn those things.
 

chriss95

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It took me a while, but I managed to get a+b=c lol. No way I'd finish this paper in 3 hours
 

deswa1

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It took me a while, but I managed to get a+b=c lol. No way I'd finish this paper in 3 hours
I don't think very many people at all could do the whole thing in 3 hours.
 

iBibah

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^You made it way harder than it needed to be. If you divide top and bottom by e^x, it just falls out directly as ln|e^x+e^-x|
Why is ln using absolute values?

I have never seen absolute values used with it except on here ?
 

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