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HSC 2017 MX2 Integration Marathon (archive) (4 Viewers)

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stupid_girl

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Re: HSC 2017 MX2 Integration Marathon

For Q4, if you stare at it long enough, you should be able to use reverse quotient rule.

Let y=1+ln x, then y'=1/x
The integrand can be written as
(y-1)/y^2
=(x'y-xy')/y^2.
Now, the answer should be obvious.
 

BenHowe

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Re: HSC 2017 MX2 Integration Marathon

For Q4, if you stare at it long enough, you should be able to use reverse quotient rule.

Let y=1+ln x, then y'=1/x
The integrand can be written as
(y-1)/y^2
=(x'y-xy')/y^2.
Now, the answer should be obvious.
Also can work by
 

BenHowe

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Re: HSC 2017 MX2 Integration Marathon

Correct!

Sorry if this seems like a dumb question, how do you go from line 2-3? Cause I can only do it your way by splitting the integral to . Then if I do the 2nd integral by IBP the remaining integrals cancel, I get the answer.
 
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jathu123

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Re: HSC 2017 MX2 Integration Marathon

Sorry if this seems like a dumb question, how do you go from line 2-3?
My bad, should have wrote it there. I just used reverse quotient rule, with the denominator being 1+lnx and the numerator x


Ohhh just realized stupid_girl already done this above
 
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BenHowe

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Re: HSC 2017 MX2 Integration Marathon

Wait what's this reserve quotient rule thing? I've never heard of this...
 

leehuan

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Re: HSC 2017 MX2 Integration Marathon

 
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BenHowe

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Re: HSC 2017 MX2 Integration Marathon

For Q4, if you stare at it long enough, you should be able to use reverse quotient rule.

Let y=1+ln x, then y'=1/x
The integrand can be written as
(y-1)/y^2
=(x'y-xy')/y^2.
Now, the answer should be obvious.
OMG just saw it. That is legit awesome
 

leehuan

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Re: HSC 2017 MX2 Integration Marathon

I think this will be divergent. It will be convergent though if you remove the 2 from inside the product.
I'm actually trying to remember what the question was. I can't recall it.
 

BenHowe

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Re: HSC 2017 MX2 Integration Marathon

How do I know to look for this in a question? It's a lot less intuitive than the quotient rule since there is no squared term on the denominator
 

InteGrand

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Re: HSC 2017 MX2 Integration Marathon

How do I know to look for this in a question? It's a lot less intuitive than the quotient rule since there is no squared term on the denominator
It's basically just inspection. If you see some sum of product of functions like that, it might be a reverse product rule.
 

InteGrand

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