HSC 2015 MX2 Integration Marathon (archive) (1 Viewer)

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VBN2470

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Re: MX2 2015 Integration Marathon

Is there a method of doing it such that it is still within the bounds of the MX2 syllabus?
 

VBN2470

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Re: MX2 2015 Integration Marathon

NEW QUESTION:

 

VBN2470

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Re: MX2 2015 Integration Marathon

let u = sin(x)

then we get integral[ sqrt(1 + u) ]

= (2/3)*(sin(x) +1)^(3/2)
You made a slight mistake, it is says cot(x), not cos(x) so u = sin(x) won't necessarily work as a valid substitution.
 

Squar3root

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Re: MX2 2015 Integration Marathon

You made a slight mistake, it is says cot(x), not cos(x) so u = sin(x) won't necessarily work as a valid substitution.
oops, my bad

I got log(sin(x)) + 2*sqrt(sin(x))
 

Ekman

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Re: MX2 2015 Integration Marathon

I don't see what I'm doing wrong :(
Invalid split of partial fractions. You can test it out by converging the two fractions together, and you wont get the original equation.
 

VBN2470

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Re: MX2 2015 Integration Marathon

How did you get from 2nd to 3rd line?
 

VBN2470

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Re: MX2 2015 Integration Marathon

No. Try again.
 

studynerd

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Re: MX2 2015 Integration Marathon

I think this way is faster.. or maybe i just dont like drawing triangles..

let u^2=1+sin^2.... make cot(x)=cos(x)/sin(x)... the you can simply put in the 2udu... it all falls out after that :)
 
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