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HSC 2013 MX2 Marathon (archive) (3 Viewers)
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RealiseNothing
what is that?It is Cowpea
Re: HSC 2013 4U Marathon
Try the old version of the question now, you should be able to get it if you got that one.
Re: HSC 2013 4U Marathon
edit: oh right it can also be pi as well
0, since if all the coefficients are real, the roots must occur in conjugate pairs, therefore the arguments will be in opposite in sign?The quadratichas roots
+arg(\beta))
edit: oh right it can also be pi as well
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HeroicPandas
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Re: HSC 2013 4U Marathon
But the new version has complex co-efficients and the old version has real co-efficients
HeroicPandas
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RealiseNothing
what is that?It is Cowpea
Re: HSC 2013 4U Marathon
You can do it that way too, both answers are correct really.
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deswa1
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Re: HSC 2013 4U Marathon
0(a+b+c-3ab +2(a^2)b - c^3)=0 (that's in terms of a,b,c)
RealiseNothing
what is that?It is Cowpea
Carrotsticks
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Re: HSC 2013 4U Marathon
but then technically it can be -pi too
if the roots are real but one's negative and the other positive?
but then technically it can be -pi too
RealiseNothing
what is that?It is Cowpea
deswa1
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Re: HSC 2013 4U Marathon
It was a joke... Twink gave the answer as 0 and Herioc said it had to be in terms of a,b,c -> thus my answer
SpiralFlex
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Re: HSC 2013 4U Marathon
I'm impressed that the advertisement of this thread worked to a degree.
I'm impressed that the advertisement of this thread worked to a degree.
RealiseNothing
what is that?It is Cowpea
bleakarcher
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Sy123
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Re: HSC 2013 4U Marathon
And sum of them two at a time, then three at a time -> why not find a polynomial with roots 1/alpha 1/beta 1/gamma
And it actually isn't time consuming at all, in order to find a polynomial with those roots, you must 'reverse' the co-efficients
So a poly with roots 1/a 1/b 1/c
would be:
2x^3+3x^2+0x+1 = 0
So then you could find sum of them one at a time, two at a time and three by just using co-efficients instead of finding common denominator and going through that torturous process
And you could do the same for sum of squares and stuff as well.
Nice work, alternatively while we can do it your way, do you see how you needed to finddamn I think I missed all the shortcuts
And sum of them two at a time, then three at a time -> why not find a polynomial with roots 1/alpha 1/beta 1/gamma
And it actually isn't time consuming at all, in order to find a polynomial with those roots, you must 'reverse' the co-efficients
So a poly with roots 1/a 1/b 1/c
would be:
2x^3+3x^2+0x+1 = 0
So then you could find sum of them one at a time, two at a time and three by just using co-efficients instead of finding common denominator and going through that torturous process
And you could do the same for sum of squares and stuff as well.
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Immortalp00n
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Re: HSC 2013 4U Marathon
i came to this thread for d babes as per sy's sig
where them bad bitches at?
i came to this thread for d babes as per sy's sig
where them bad bitches at?
Sy123
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Re: HSC 2013 4U Marathon
Only maths here, if that's what you're talking about.
Err, not sure what you're talking about
Only maths here, if that's what you're talking about.
RealiseNothing
what is that?It is Cowpea
GoldyOrNugget
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Re: HSC 2013 4U Marathon
I was playing around with these sorts of problems on the bus the other day, but I ended up confusing myself and didn't get very far.
Say you had a polynomial with roots
and you want to find a polynomial with roots , f(a_2), ..., f(a_n))
(Sy's question would be a special case of this where  = x + \frac{1}{x})
).
You can find an equation with these roots by replacing every instance of
in the polynomial with )
(this is an interesting property to investigate/prove). In some cases, that equation can be algebraically manipulated into a polynomial without creating any new roots. This is why the trick of inverting coefficients works for  = 1/x)
-- it's a shortcut to replacing all terms with 
and multiplying out the resulting fractions.
When)
isn't monotonic (meaning is not a function), it still works; I'm pretty sure you can choose a maximal interval on its domain over which it's monotonic (probably the wrong terminology) and use that for the inverse, because the only necessity is that ) = x)
. Also, I'm not convinced that all equations generated in this manner can be manipulated into polynomials without creating new roots (for example, I had some trouble doing it with Sy's question, but I could have just messed up the algebra). Perhaps someone else will have more luck investigating this?
I was playing around with these sorts of problems on the bus the other day, but I ended up confusing myself and didn't get very far.
Say you had a polynomial with roots
You can find an equation with these roots by replacing every instance of
When
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