Higher Level Integration Marathon & Questions (1 Viewer)

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: Extracurricular Integration Marathon

Couldn't spot a real method, but when computing this in a rather unimaginative complex way I was surprised to discover that my method yielded values for



for pretty arbitrary rational functions f(x) (of course with appropriate decay to make circular contours have no contribution, and without poles on the non-negative real axis.)

I think you can also replace the log with a positive integral power of log. (Idk if the form will be closed for arbitrary k, but you should at least get a recursive expression.)

I didn't realise till now that thse kind of integrals could be so easily computed in such generality, so it is nice to learn something new!

Anyway, can hold back from posting this for a little while if you have a strong preference for real methods.
 

Paradoxica

-insert title here-
Joined
Jun 19, 2014
Messages
2,556
Location
Outside reality
Gender
Male
HSC
2016
Re: Extracurricular Integration Marathon

Couldn't spot a real method, but when computing this in a rather unimaginative complex way I was surprised to discover that my method yielded values for



for pretty arbitrary rational functions f(x) (of course with appropriate decay to make circular contours have no contribution, and without poles on the non-negative real axis.)

I think you can also replace the log with a positive integral power of log. (Idk if the form will be closed for arbitrary k, but you should at least get a recursive expression.)

I didn't realise till now that thse kind of integrals could be so easily computed in such generality, so it is nice to learn something new!

Anyway, can hold back from posting this for a little while if you have a strong preference for real methods.
I think differentiation under the integral sign counts as a real method. Have you considered the Beta Function? It's what I thought of immediately but I'm ceebs actually doing it.
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: Extracurricular Integration Marathon

I think differentiation under the integral sign counts as a real method. Have you considered the Beta Function? It's what I thought of immediately but I'm ceebs actually doing it.
Yeah, if I look at it later today (I probably will at some point, seems more fun that thesis editing / writing assignment for my course lol), differentiation under the integral / rewriting as a double integral in a clever way is absolutely the main way I would try to do it.

It's just when several such steps are involved in a problem that I either cannot do them or it takes an inordinate amount of time for me to do so.
 

Paradoxica

-insert title here-
Joined
Jun 19, 2014
Messages
2,556
Location
Outside reality
Gender
Male
HSC
2016
Re: Extracurricular Integration Marathon

Yeah, if I look at it later today (I probably will at some point, seems more fun that thesis editing / writing assignment for my course lol), differentiation under the integral / rewriting as a double integral in a clever way is absolutely the main way I would try to do it.

It's just when several such steps are involved in a problem that I either cannot do them or it takes an inordinate amount of time for me to do so.
true, the necessary substitution for the x³ makes mental calculations a bit difficult.
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: Extracurricular Integration Marathon

Kinda funny how often the Basel sum crops up in these things.

It's pretty fortunate, because it is not a trivial sum to evaluate, it just happens to be burned into all of our brains more than any series of comparable difficulty due to its fame.
 

Paradoxica

-insert title here-
Joined
Jun 19, 2014
Messages
2,556
Location
Outside reality
Gender
Male
HSC
2016
Extracurricular Integration Marathon

Kinda funny how often the Basel sum crops up in these things.

It's pretty fortunate, because it is not a trivial sum to evaluate, it just happens to be burned into all of our brains more than any series of comparable difficulty due to its fame.
I think we can do a similar thing for all integrals of the form:



for integers a,b,n

Actually I think there's a more general formula in one of my integral resources for this case...
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: Extracurricular Integration Marathon

I think we can do a similar thing for all integrals of the form:



for integers a,b,n

Actually I think there's a more general formula in one of my integral resources for this case...
Can you post such a formula if you locate it? This particular example posed by omegadot was much nicer than the general case (although as I remarked, the complex method I had in mind generalises well).

The indices worked out perfectly modulo 3 to make this computation short, in general it seems (at a glance at least) that we would have to deal with expressions like the sum of (3k+1)^(-2) which should be possible to compute but probably not famous enough to assume without proof.
 

Paradoxica

-insert title here-
Joined
Jun 19, 2014
Messages
2,556
Location
Outside reality
Gender
Male
HSC
2016
Re: Extracurricular Integration Marathon

Can you post such a formula if you locate it? This particular example posed by omegadot was much nicer than the general case (although as I remarked, the complex method I had in mind generalises well).

The indices worked out perfectly modulo 3 to make this computation short, in general it seems (at a glance at least) that we would have to deal with expressions like the sum of (3k+1)^(-2) which should be possible to compute but probably not famous enough to assume without proof.
The denominator being linear is a sufficient condition for the integral to have a nice closed form free of the Gamma Function.

Proof: From the alternative definition of the Beta Function



Note the substitution xn→x also doesn't create a mess with the logarithm since all it does is give a rescaling factor, so nothing too bad there.

The substitution xn→x does not fundamentally affect the denominator in the slightest, and so we have p+q=1, regardless of the value of n

But from the Gamma definition of the Beta Function, this means that:



The integer powers of the natural logarithm come from repeatedly differentiating with respect to x, but since the integral is already in elementary form, it's higher derivatives are also in elementary form.

Therefore, a "nice" closed form exists.



addendum: "a" doesn't have to be an integer since it's not a part of any discrete operations. I suppose "n" doesn't have to be either, though that would make things a little more messy with the substitution component.
 
Last edited:

omegadot

Active Member
Joined
Oct 15, 2015
Messages
230
Gender
Male
HSC
N/A
Re: Extracurricular Integration Marathon

Can you post such a formula if you locate it? This particular example posed by omegadot was much nicer than the general case (although as I remarked, the complex method I had in mind generalises well).

The indices worked out perfectly modulo 3 to make this computation short, in general it seems (at a glance at least) that we would have to deal with expressions like the sum of (3k+1)^(-2) which should be possible to compute but probably not famous enough to assume without proof.












 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: Extracurricular Integration Marathon

We should add infinite series to this thread!



As usual, "lower tech" methods are preferable.
 

Paradoxica

-insert title here-
Joined
Jun 19, 2014
Messages
2,556
Location
Outside reality
Gender
Male
HSC
2016
Re: Extracurricular Integration Marathon

We should add infinite series to this thread!



As usual, "lower tech" methods are preferable.
This isn't a complete answer, but the furthest progress I have made so far without invoking too much prior knowledge.

Using the Inverse Laplace Transform, we find that for all n ≠ 0,



The integral is absolutely convergent for all values of n, by using sinx < x and comparison to Basel's Problem. By the dominated convergence theorem, the change in order can be made.

The simplified geometric sum of the integrand converges for all non-negative x, including x = 0, so the integral is equal to the sum (minus 1), without further trouble.

Hence:

 

Paradoxica

-insert title here-
Joined
Jun 19, 2014
Messages
2,556
Location
Outside reality
Gender
Male
HSC
2016
Re: Extracurricular Integration Marathon

If anyone wants to try that integral, feel free to. I've given up already :p

This is the most "basic" proof I can come up with.

The Weierstrass Form (valid for all complex numbers) of the Gamma Function is defined as:



The proof of the Gamma Functional Equation using the Integral Form, the Integral form equals the Euler Form, and the Euler Form equals the Weierstrass Form, are all within real analytic realms, so this is probably the closest I can get. There's the problem with complex logarithms and complex derivatives which I still haven't addressed...

Using the Recurrence Relation of the Gamma Function:



Combine the two and multiply term by term:



Take the Logarithm of both sides, differentiate and plug in z = i. Simplify both sides and rearrange to acquire the desired sum.

Don't forget your Hyperbolic Trigonometry :p
 

Kingom

Member
Joined
Apr 25, 2015
Messages
49
Gender
Male
HSC
2019
Re: Extracurricular Integration Marathon

 
Last edited:

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: Extracurricular Integration Marathon

If anyone wants to try that integral, feel free to. I've given up already :p

This is the most "basic" proof I can come up with.

The Weierstrass Form (valid for all complex numbers) of the Gamma Function is defined as:



The proof of the Gamma Functional Equation using the Integral Form, the Integral form equals the Euler Form, and the Euler Form equals the Weierstrass Form, are all within real analytic realms, so this is probably the closest I can get. There's the problem with complex logarithms and complex derivatives which I still haven't addressed...

Using the Recurrence Relation of the Gamma Function:



Combine the two and multiply term by term:



Take the Logarithm of both sides, differentiate and plug in z = i. Simplify both sides and rearrange to acquire the desired sum.

Don't forget your Hyperbolic Trigonometry :p
This is pretty good. From memory when I last computed this it was via a similar complex analytic factorisation method, and I believe there was also a hackier solution via ODES.

Will look for a nicer way to do it when I have a bit more free time, I just remembered enjoying it the first time around, and wondered if any of you guys could find a cute way of doing it.
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top