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HSC 2012-14 MX2 Integration Marathon (archive) (5 Viewers)

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seanieg89

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Re: MX2 Integration Marathon

Alternatively alternatively,

 

seanieg89

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Re: MX2 Integration Marathon

Keep the trick in mind, it is a handy way to bypass some t-substitution bashes.
 

Carrotsticks

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Re: MX2 Integration Marathon

Try dividing numerator and denominator by e^{-kx} ....
 

barbernator

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Re: MX2 Integration Marathon

<a href="http://www.codecogs.com/eqnedit.php?latex=\int (sin^{-1}(x))^{2}~dx" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\int (sin^{-1}(x))^{2}~dx" title="\int (sin^{-1}(x))^{2}~dx" /></a>
 

nightweaver066

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Re: MX2 Integration Marathon

<a href="http://www.codecogs.com/eqnedit.php?latex=\int (sin^{-1}(x))^{2}~dx" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\int (sin^{-1}(x))^{2}~dx" title="\int (sin^{-1}(x))^{2}~dx" /></a>








Question:
 
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Aesytic

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Re: MX2 Integration Marathon

let u=arcsin(x)

I = integral(u^2) dx
= integral(u^2) du * dx/du

u=arcsin(x)
x=sinu
dx/du = cosu

.'. I = integral (u^2 * cosu) du
integrating by parts,
m=u^2
m'=2u
n'=cosu
n=sinu
I = u^2*sinu - integral(2u*sinu) du
= u^2*sinu - 2*integral(u*sinu) du
Using parts again,
p=u
p'=1
q'=sinu
q=-cosu
I = u^2*sinu - 2(-u*cosu - integral(-cosu) du)
= u^2*sinu + 2u*cosu - 2*integral(cosu) du
= u^2*sinu + 2u*cosu - 2sinu
= x(arcsin(x))^2 + 2arcsin(x)*cos(arcsin(x)) - 2x + C

not sure if this is the fastest way to do it
 

HeroicPandas

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Re: MX2 Integration Marathon

Here is a great question:

Integrate e^[e^(x) + x].dx

EDIT: AWWWWW SOMEONE ALREADY POSTED UP THE QUESTION :(
 

Drongoski

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Re: MX2 Integration Marathon

Here is a great question:

Integrate e^[e^(x) + x].dx

EDIT: AWWWWW SOMEONE ALREADY POSTED UP THE QUESTION :(



Edit

Can you. Heroic, or someone post the next question please. I forgot I need to do this in a Marathon.
 
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HeroicPandas

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Re: MX2 Integration Marathon




Edit

Can you. Heroic, or someone post the next question please. I forgot I need to do this in a Marathon.
Ok, i just learnt this today and its funny LOL

Integrate: ROOT[ 1 + sin2x ].dx
 

Sy123

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Re: MX2 Integration Marathon

Ok, i just learnt this today and its funny LOL

Integrate: ROOT[ 1 + sin2x ].dx


Also if its possible, could someone when they post their integrals put a tag on whether a 3U student can do this?
Fanks (I dont know of any good 4U integrals, but here is a 3u one)



Just one I thought of on top of my head
 
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HeroicPandas

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Re: MX2 Integration Marathon

Within a restricted domain ;). Think about square roots carefully.
Yes u got it, i was gonna put in borders to see if anyone can cancel the absolute but NAHHHH looks ugly without latex

and good job on seeing that 1 is not a 1 ahah
 
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HeroicPandas

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Re: MX2 Integration Marathon



Also if its possible, could someone when they post their integrals put a tag on whether a 3U student can do this?
Fanks (I dont know of any good 4U integrals, but here is a 3u one)



Just one I thought of on top of my head
Is the answer ln(arctanx) +c

Let u = arctanx

du = dx/ (1 + x^2)

.'. I = integral du/u

= ln(u) + C

= ln ( arctanx) +C

OK i dont know if this is 3u or 4u, if this is 3unit i will stop posting up 3unit integration:

EDIT: Sorry i confused myself when making up aquestion lol
 
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Sy123

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Re: MX2 Integration Marathon

Within a restricted domain ;). Think about square roots carefully.
Oops, lol. Hmm..

So the domain is for all x

Using auxilliary angles



So our domain is



?
 
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