Another Hard Integration Question (1 Viewer)

rheyn · Oct 3, 2009

Could someone please help with this other integration question I couldn't get out:

$\int_{1}^{\infty }\frac{du}{1+u^{4}}$

Pwnage101 · Oct 3, 2009

decompose into partial fractions

You'll need to use complex numbers to factorise the denominator into four complex factors (by using de moivres theorm and solving (u^4)-1 = 0), which then reduces to two real quadratics when you multiply two of these out, which you then decompose into partial fractions and integrate normally, you will end up with terms in log and inverse tan (2 of each).

Takes a bit of work though.

Also since this is a definite integral, you should integrate from 1 to t, where t is a dummy variable, because you then take the limit as t tends to infinity.

A bit beyond HSC though.

Top Secret · Oct 3, 2009

Pwnage101 said:
A bit beyond HSC though.

What course are you doing at uni?

jet · Oct 3, 2009

I'm nearly done, just doing the actual integration now!!

Drongoski · Oct 3, 2009

I found (I didn't do it) the following very similar integral.

$\100dpi \int \frac{1}{4+x^{4}}\ dx = \ \frac{1}{16}ln\left | \frac{x^{2}+2x+2}{x^{2}-2x+2} \right | + \frac{1}{8}\left [ tan^{-1}(x+1)+tan^{-1}(x-1) \right ] + C\\ \\ \\ Who\ would\ have\ figured\ out\ that:\\ \\ 4+x^{4}=(x^{2}+2x+2)(x^{2}-2x+2)\ =\ (x^{2}+2)^{2}-(2x)^{2}\\ \\ and\ that:\\ \\ \frac{1}{4+x^{4}}\ =\ \frac{1}{16}\left [ \frac{2x+2}{x^{2}+2x+2}\ -\ \frac{2x-2}{x^{2}-2x+2} \right ]\ +\ \frac{1}{8}[\frac{1}{1+(x+1)^{2}}\ +\ \frac{1}{1+(x-1)^{2}}]\\ \\ \\ to\ yield\ the\ above\ result?$

By reverse engineering, I derived the above.

jet · Oct 3, 2009

Pretty sure I've made a numerical error somewhere at the end - I get twice the value that my grapher gets. I'll check working tomorrow. The method should be correct though. Edit: Fixed problem thanks to lolokay.

Drongoski · Oct 3, 2009

jetblack: I salute you!

GUSSSSSSSSSSSSS · Oct 4, 2009

Drongoski said:
jetblack: I salute you!

even the esteemed drongoski had to "tip his hat" to this i guess =P

lolokay · Oct 4, 2009

what's that thing you did with the inverse tans? :S

should be: $\frac{1}{4\sqrt 2}(\pi -ln(3+2\sqrt 2))$

Aerath · Oct 4, 2009

No way would that ever be in a 4U HSC. Ever.

Well, I sincerely hope not in 09.

Pwnage101 · Oct 4, 2009

Like i said, the question as is is beyond the HSC. Thats not to say the concepts that you need are beyond HSC - they are not, however, the only way they could use this in an exam would be to guide you.

Eg
part a: solve u^4-1=0
part b: hence factorise u^4-1 into the product of two real quadratics
part c: hence decompose (1+u^4)^-1 into partial fractions
part d:hence find the indefinite integral
part e: integrate from 1 to t
part f: what can we say about the integral as t tends to infinity

But i highly doubt it would ever be asked, even like that. However it is a great question to test how well you can combine several topics in the MX2 course, with a bit of guidance.

jet · Oct 4, 2009

lolokay said:
what's that thing you did with the inverse tans? :S

should be: $\frac{1}{4\sqrt 2}(\pi -ln(3+2\sqrt 2))$

Yeah, I just realised. Fixing it now.

Pwnage101 · Oct 4, 2009

well done jetblack2007.

Aerath · Oct 4, 2009

Pwnage101 said:
Like i said, the question as is is beyond the HSC. Thats not to say the concepts that you need are beyond HSC - they are not, hwoever, the only way they could use this in an exam would be to guide you.

Eg
part a: solve u^4-1
part b: hence factorise u^4-1 into the product of two real quadratics
part c: hence decompose (1+u^4)^-1 into partial fractions
part d:hence find the indefinite integral
part e: integrate from 1 to t
part f: what can we say about the integral as t tends to infinity

But i highly doubt it would ever be asked, even like that. However it is a great question to test how well you can combine several topics in the MX2 course, with a bit of guidance.

Yeah, that'd be a great question, in my opinion.

q3thefish · Oct 4, 2009

jetblack2007 said:
Pretty sure I've made a numerical error somewhere at the end - I get twice the value that my grapher gets. I'll check working tomorrow. The method should be correct though. Edit: Fixed problem thanks to lolokay.

Extremely impressive.

Another Hard Integration Question (1 Viewer)

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