Preliminary mathematics marathon (2 Viewers)

hscishard

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Prove that:

cos 3 theta = 4cos^3theta- 3 cos theta
LHS=cos(3x)
= cos(2x + x)=cos2x(cosx) - sin2x(sinx)
=(2cos^2(x) -1)(cosx) - 2sinxcosx(sinx)
=2cos^3x - cosx - 2sin^2x(cosx)
=2cos^3(x) - cosx -2(1-cos^2x)cosx
=2cos^3(x) - cosx -2cosx +2cos^3x
=4cos^3(x) -3cosx = RHS

Pain to type man
 

Entrant

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Re: another question

Hint for those attempting it: Use implicit differentiation. Although I think this is in HSC course, not prelim anyway.
New Question:



Lemniscate of Bernoulli - Wikipedia, the free encyclopedia
Hint for those attempting it: Use implicit differentiation. Although I think this is in HSC course, not prelim anyway.
(x^2 + y^2)^2 = 2(y^2+x^2)
taking derivatives of both sides
(2x+2ydy/dx)(x^2+y^2)2 = 2(2ydy/dx+2x)
(2x+2ydy/dx)(x^2+y^2)=(2ydy/dx+2x)
:chainsaw::chainsaw::chainsaw::chainsaw::chainsaw::chainsaw:
2x^3+2x^2ydy/dx+2y^3dy/dx+2xy^2dy/dx = 2ydy/dx+2x
moving everything with dy/dx onto one side.
2x^3-2x=2ydy/dx-2x^2ydy/dx-2y^3dy/dx-2xy^2dy/dx
2x(x^2-1)=[dy/dx](2y-2x^2y-2y^3-2xy^2)
therefore
dy/dx = 2x(x^2-1)/(2y-2yx^2-2y^3-2xy^2
= 2x(x^2-1)/[2y](1-x^2)-2y^2(y-2x)
think i got it wrong. but you try doing it on a computer.
I broke my scanner ages ago.
 

fullonoob

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Re: another question

I went (cos2x)^2/2 = cos2x
i like :jump:

(x^2 + y^2)^2 = 2(y^2+x^2)
taking derivatives of both sides
(2x+2ydy/dx)(x^2+y^2)2 = 2(2ydy/dx+2x)
(2x+2ydy/dx)(x^2+y^2)=(2ydy/dx+2x)
:chainsaw::chainsaw::chainsaw::chainsaw::chainsaw::chainsaw:
2x^3+2x^2ydy/dx+2y^3dy/dx+2xy^2dy/dx = 2ydy/dx+2x
moving everything with dy/dx onto one side.
2x^3-2x=2ydy/dx-2x^2ydy/dx-2y^3dy/dx-2xy^2dy/dx
2x(x^2-1)=[dy/dx](2y-2x^2y-2y^3-2xy^2)
therefore
dy/dx = 2x(x^2-1)/(2y-2yx^2-2y^3-2xy^2
= 2x(x^2-1)/[2y](1-x^2)-2y^2(y-2x)
think i got it wrong. but you try doing it on a computer.
I broke my scanner ages ago.
i dont like :hat:
 

jeshxcore

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Re: another question


(x^2 + y^2)^2 = 2(x^2 - y^2)
DIFFERENTIATE IMPLICITLY
2(x^2 + y^2)(2x + 2y.dy/dx) = 2(2x - 2y.dy/dx)
CANCEL OUT THE 2's AND EXPAND
(2x^3 + 2x.y.dy/dx + 2x.y^2 + 2y^3.dy/dx) = 2x - 2y.dy/dx
CANCEL OUT THE 2's AGAIN
x^3 + x.y.dy/dx + x.y^2 + y^3.dy/dx = x - y.dy.dx
dy/dx (x.y + y^3 + y) = x - x^3 - x.y^2
dy/dx = x(1 - x^3 - y^2)/y(x + y^2 + 1)

hopefully.. lol
 

fullonoob

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Re: another question

cbf man ><
its too hard to read, latex better
just go wolfram if you want the solution
 

fullonoob

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Re: another question

2cos2x = cosx - sinx
solve for 0<=x<=360
 

hscishard

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Re: another question

2cos2x = cosx - sinx
solve for 0<=x<=360
2(cos^2-sin^2) = cosx - sinx
2(cosx-sinx)(cosx+sinx)= cosx -sinx
2(cosx+sinx)=1
sinx+cosx=1/2

Transforming:
R = root(1+1) = root 2





204.3 and 335.7 1 d.p

First few steps aren't really that familiar..
Is there another way to do this?
 

fullonoob

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Re: another question

t formula
the complete answer is 45 deg, 114 deg 18 min, 225 deg, 335 deg 42 min.
off to bed now :)
 

jeshxcore

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Re: another question

2(cos^2-sin^2) = cosx - sinx
2(cosx-sinx)(cosx+sinx)= cosx -sinx
2(cosx+sinx)=1

sinx+cosx=1/2

Transforming:
R = root(1+1) = root 2





204.3 and 335.7 1 d.p

First few steps aren't really that familiar..
Is there another way to do this?
you cant "cancel out" cosx - sinx from both sides, that would result in you losing solutions
 

fullonoob

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Re: another question

farr bos was down when i posted. if you want the working out ill post it the next time i visit this thread (non t forumla way)
 

shaon0

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Re: another question

its wrong i know, but i cbf fixing it.
find for values of x which
x^-1+x^2/2-x^-3/3+x^4/4-x^-5/5...-x^-(n-1)/n-1+x^n/n = 0.999
IF n IS AN EVEN NUMBER.
Is your equation correct?
 

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