HSC 2012-14 MX2 Integration Marathon (archive) (2 Viewers)

Carrotsticks · Aug 5, 2012

Re: MX2 Integration Marathon

HeroicPandas said:
Integral of e^[e^(x) +x].dx

That's a good question.

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

Carrotsticks said:
That's a good question.

LOL, are u serious? Or are u joking with me O_O

U MAD BRO · Aug 5, 2012

Re: MX2 Integration Marathon

$\frac{ e^{e^{x}+x}}{e^{x}+1}+C$
=)
i know it's wrong

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

U MAD BRO said:
$\frac{ e^{e^{x}+x}}{e^{x}+1}+C$
=)
i know it's wrong

DONT TELL HIM THE ANSWER!!!!, yeh im sorry its wrong, im from ext1 btw, i know a little of ext2 (tutor - complex numbers)

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

im not saying that im better than you, i know u can beat me in ext and ext2

the question i posted up, u can use that way cos the power of e isnt a linear

U MAD BRO · Aug 5, 2012

Re: MX2 Integration Marathon

HeroicPandas said:
im not saying that im better than you, i know u can beat me in ext and ext2

the question i posted up, u can use that way cos the power of e isnt a linear

i hate mx1 !
do we use substitution?
do these then

$\int e^{\sqrt{x}}dx$
and
$\int e^{x}sin^{2}x dx$

U MAD BRO · Aug 5, 2012

Re: MX2 Integration Marathon

$\int \frac{dx}{x^{8}-1}$

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

U MAD BRO said:
i hate mx1 !
do we use substitution?
do these then
$\int e^{\sqrt{x}}dx$
and
$\int e^{x}sin^{2}x dx$

hm ok but try to do mine

think b4 u use substitution

think hard, u have to do something b4 u let u be something

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

U MAD BRO said:
i hate mx1 !
do we use substitution?
do these then
$\int e^{\sqrt{x}}dx$
and
$\int e^{x}sin^{2}x dx$

LOL all this time i've been doing 4unit integration...i never knew that, feels good!
the first on is easy, i'll do the 2nd one

barbernator · Aug 5, 2012

Re: MX2 Integration Marathon

U MAD BRO said:
This is a double integral over a keystone shape in polar coordinates. (so limits are finite, and not a complete circle).

I've tried all sorts of things. I am not even sure if there is an analytic solution. Is there away to show there isn't one?

why do you post this, and you can't even do other simple questions?

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

ahh its too hard, the 2nd one and 3rd one, IM MAD! its late now i gotta go to sleep, cya and remember to try to do my question

HeroicPandas · Aug 5, 2012

Re: MX2 Integration Marathon

barbernator said:
why do you post this, and you can't even do other simple questions?

Integral of e^[e^(x) +x].dx

Goodnight

U MAD BRO · Aug 5, 2012

Re: MX2 Integration Marathon

barbernator said:
why do you post this, and you can't even do other simple questions?

Which other questions are you referring to?

U MAD BRO · Aug 5, 2012

Re: MX2 Integration Marathon

HeroicPandas said:
ahh its too hard, the 2nd one and 3rd one, IM MAD! its late now i gotta go to sleep, cya and remember to try to do my question

nah, im gonna study harder 3U instead

barbernator · Aug 5, 2012

Re: MX2 Integration Marathon

<a href="http://www.codecogs.com/eqnedit.php?latex=\int e^{e^{x}@plus;x}=\int e^{e^{x}}e^{x}\\ let~u~=e^{x}\\ du=e^xdx\\ =e^{e^{x}} @plus; C" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\int e^{e^{x}+x}=\int e^{e^{x}}e^{x}\\ let~u~=e^{x}\\ du=e^xdx\\ =e^{e^{x}} + C" title="\int e^{e^{x}+x}=\int e^{e^{x}}e^{x}\\ let~u~=e^{x}\\ du=e^xdx\\ =e^{e^{x}} + C" /></a>

U MAD BRO · Aug 5, 2012

Re: MX2 Integration Marathon

U MAD BRO said:
$\int \frac{dx}{x^{8}-1}$

is there a fast way to do this question?
the way i do it is with complex numbers and it gets really messy.

barbernator · Aug 5, 2012

Re: MX2 Integration Marathon

U MAD BRO said:
is there a fast way to do this question?
the way i do it is with complex numbers and it gets really messy.

u can do partial fracts but it takes bloody ages

Sanjeet · Aug 6, 2012

barbernator said:
<a href="http://www.codecogs.com/eqnedit.php?latex=\int e^{e^{x}@plus;x}=\int e^{e^{x}}e^{x}\\ let~u~=e^{x}\\ du=e^xdx\\ =e^{e^{x}} @plus; C" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\int e^{e^{x}+x}=\int e^{e^{x}}e^{x}\\ let~u~=e^{x}\\ du=e^xdx\\ =e^{e^{x}} + C" title="\int e^{e^{x}+x}=\int e^{e^{x}}e^{x}\\ let~u~=e^{x}\\ du=e^xdx\\ =e^{e^{x}} + C" /></a>

Lol so simple, can't believe no one got it before

asianese · Aug 6, 2012

Re: MX2 Integration Marathon

Omg I just did the e^x one without anything!

asianese · Aug 6, 2012

Re: MX2 Integration Marathon

$\begin{align*}\int e^x\sin^2x\;dx&= \frac{1}{2}\int e^x(1-\cos2x)dx\\&= \frac{1}{2} \int (e^x-e^x\cos2x )dx\\ \text{Do integration by parts on}\; e^x\cos2x \; \text{with } u=\cos2x \; \text{and} \; dv=e^xdx \\ \therefore du=-2\sin2xdx \;\text{and}\; v=e^x \\ I&= \frac{1}{2} \left[ e^x-(\cos2xe^x+\int 2\sin2x e^x \; dx) \right ]\\ &= \frac{1}{2} \left[e^x-\cos2xe^x-2\int \sin2xe^x\;dx \right ]\\ &= \frac{e^x}{2}-\frac{\cos2xe^x}{2} -\int \sin2xe^x\;dx\\\text{Now use integration by parts on } \sin2xe^x \; \text{with } s=\sin2x \text{ and } dt=e^xdx \\ \therefore ds=2\cos2xdx \text{ and } t=e^x\\I&=\frac{e^x}{2}-\frac{\cos2xe^x}{2}-e^x\sin2x+2\int e^x(1-2\sin^2x)\\ &=\frac{e^x}{2}-\frac{\cos2xe^x}{2}-e^x\sin2x+2e^x-4I\\ 5I&=\frac{e^x}{2}-\frac{\cos2xe^x}{2}-e^x\sin2x+2e^x\\ \therefore I=\frac{e^x}{10}-\frac{\cos2xe^x}{10}-\frac{e^x\sin2x}{5}+\frac{2e^x}{5}+C \end{align*}$

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