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

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U MAD BRO

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Re: MX2 Integration Marathon

He added the definite integrals of and together.

As they're both the same, it becomes 2I = etc.

He then put them both under the same denominator and multiplied numerator and denominator by 2.
thanks, that makes sense.
 

D94

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Re: MX2 Integration Marathon

could someone explain to me what happened between the 1st line and the 2nd line?
Sean added the two equivalent integrands together. You should notice this by the 2I. If you add the first integrand to the second, and through a bit of manipulation (i.e. multiply top and bottom by 2cos2x) then you will get to the result in the second line.

EDIT: eh, too slow.
 

Shadowless

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Re: MX2 Integration Marathon

he added the definite integrals of and together.

As they're both the same, it becomes 2i = etc.

He then put them both under the same denominator and multiplied numerator and denominator by 2.
thanks
 

Shadowless

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Re: MX2 Integration Marathon

U MAD BRO keep your integrals at the level of the MX2 integration topic. If you are interested in how to do these yourself, do outside research / ask in extracurricular. This thread is an inappropriate place to post them.

@Rolpsy nice question!

from the 3rd line to the 4th line... what identity is that? (limits changed?)
 

nightweaver066

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Re: MX2 Integration Marathon

from the 3rd line to the 4th line... what identity is that? (limits changed?)
I don't know how to explain it otherwise, but if you use the substitution u = 2x, you get that next line.
 

D94

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Re: MX2 Integration Marathon

It's a u-substitution concept, so he let u = 2x, but 'u' is as valid as using 'x' or 'y' or 'z', so he really let x = 2x.
 

Shadowless

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Re: MX2 Integration Marathon

I don't know how to explain it otherwise, but if you use the substitution u = 2x, you get that next line.
okay i have the 4th line... BUT HOW DO WE GET THE 5TH ONE?... -_- why is this integral so difficult

(BTW: is this MX2 LEVEL? because I have never really encountered any past HSC questions like this...?):cold:
 

rolpsy

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Re: MX2 Integration Marathon

okay i have the 4th line... BUT HOW DO WE GET THE 5TH ONE?... -_- why is this integral so difficult

(BTW: is this MX2 LEVEL? because I have never really encountered any past HSC questions like this...?):cold:
5th line should be (note limits of last two integrals)



to get there, split up the integral and rewrite the ones between pi/2 and pi with a substitution of u = pi - x
e.g.,





great solution seanieg89
 
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Re: MX2 Integration Marathon

No. I meant what I typed.
 

Bozza555

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Re: MX2 Integration Marathon



level: easy
<a href="http://www.codecogs.com/eqnedit.php?latex=\noindent let \space\ u=lnx \\\therefore du=\frac{1}{x}dx\\ \therefore \int \frac{ln(lnx)}{xlnx}=\int \frac{lnu}{u}du\\ let\space\ I= \int \frac{lnu}{u}du\\ integrating \space\ by \space\ parts:\\ I=(lnu)^2-\int \frac{lnu}{u}du @plus;c\\ \therefore 2I=(lnu)^2@plus;c\\ I=\frac{1}{2}(ln(lnx))^2@plus;c" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\noindent let \space\ u=lnx \\\therefore du=\frac{1}{x}dx\\ \therefore \int \frac{ln(lnx)}{xlnx}=\int \frac{lnu}{u}du\\ let\space\ I= \int \frac{lnu}{u}du\\ integrating \space\ by \space\ parts:\\ I=(lnu)^2-\int \frac{lnu}{u}du +c\\ \therefore 2I=(lnu)^2+c\\ I=\frac{1}{2}(ln(lnx))^2+c" title="\noindent let \space\ u=lnx \\\therefore du=\frac{1}{x}dx\\ \therefore \int \frac{ln(lnx)}{xlnx}=\int \frac{lnu}{u}du\\ let\space\ I= \int \frac{lnu}{u}du\\ integrating \space\ by \space\ parts:\\ I=(lnu)^2-\int \frac{lnu}{u}du +c\\ \therefore 2I=(lnu)^2+c\\ I=\frac{1}{2}(ln(lnx))^2+c" /></a>

Edit: to slow haha
 

SpiralFlex

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Re: MX2 Integration Marathon










[HR][/HR]







[HR][/HR]












Actually, last part [c ii.] don't worry about it...
 

lolcakes52

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Re: MX2 Integration Marathon

Any one who saw what was hear just forget about that time i forget the difference between odd and even functions.
 
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sky_angel

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Re: MX2 Integration Marathon

I don't get anything in this threadddd
 

Shadowdude

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Re: MX2 Integration Marathon

Basic

How many ways can you place 5 people into 3 distinct rooms? e.g. one 'way' is 3 people in room one, 2 people in room two and none in room three

Challenging

How many ways can you place 10 people into 5 distinct rooms?

If you're game

Show that the number of ways you can place n-k people into k+1 distinct rooms is C(n,k).
 

kaz1

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Re: MX2 Integration Marathon

Basic

How many ways can you place 5 people into 3 distinct rooms? e.g. one 'way' is 3 people in room one, 2 people in room two and none in room three

Challenging

How many ways can you place 10 people into 5 distinct rooms?

If you're game

Show that the number of ways you can place n-k people into k+1 distinct rooms is C(n,k).
tis' not integration, no wonder you failed MX2
 

kaz1

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Re: MX2 Integration Marathon

Basic

How many ways can you place 5 people into 3 distinct rooms? e.g. one 'way' is 3 people in room one, 2 people in room two and none in room three

Challenging

How many ways can you place 10 people into 5 distinct rooms?

If you're game

Show that the number of ways you can place n-k people into k+1 distinct rooms is C(n,k).
tis' not integration, no wonder you failed MX2
 
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