i
times the sum of the residues of f within C.|
Home | 18.013A | Chapter 27 |
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There are functions that are not integrable in general but for which integrals between certain specific endpoints can be evaluated.
These are often integrals that can be rewritten, either by adding a known integral, or by using symmetry, or by some other trick, as an integral over a closed path in the complex plane.
Such integrals can be evaluated by use of the Residue Theorem, which states
that the integral of a function f(z) counterclockwise around a simple closed
path C is 2i
times the sum of the residues of f within C.
The residue of a function with an isolated singularity is the coefficient of its minus first power at the singular point.
Thus for example, 
has residue 2 at z = 0. 
has
residue 1 at even multiples of ,
and residue -1 at the odd multiples of .
We know that the function 
is the derivative of the arctangent, so we can actually integrate it over any
range. In particular since we have
Here is another way to deduce this fact. We can use partial fractions to write
Thus this function has a singularity at i in the upper half plane and a singularity
at -i in the lower half plane, with residues 
respectively. If we make a path C that goes up the real axis from -R to R then
around a semicircle in the upper half plane from R back to -R, for R > 1
this will enclose the singularity at i.
The value of the integral will therefore be 
,
by the residue theorem.
The integrand will behave like 
on the large semicircle, and since the length of that semicircle is only R,
the integral around it will go to zero like 
does as R increases.
This tells us that the value of the integral from -R to R on the real line will
go to
as R increases.
This gives us an integral we know.
However the same technique applies to much more complicated integrands and allows us to do lots of integrals again from -R to R as R approaches infinity.
We give two examples.
One is the so called Fourier transform of 
where C is the semicircle of radius R in the upper half plane, and again the integral on C goes to zero as R increases.
Now we use this method to sum a series. The function cot x is singular at x
= 0 and is periodic with period
so it is singular at every multiple of .
Its residue at each of these singularities is 1.
Moreover, if you wander far off the real line, it quickly approaches either i or -i, since it is
and the second terms in the numerator and denominator will dominate in the upper half plane making the integrand approach -i and the first terms will dominate in the lower half plane so that it approaches i as |y| increases there.
This implies that an integral of 
over a large circle of radius R (with R a half integral multiple of
to avoid trouble near the real line) will go to zero as R goes to infinity just
as in the previous case.
This further implies that the sum of the residues of this function must go
to zero inside this circle. But for each positive or negative integer j the
residue of this function at 
.
The residue of this integrand at z = 0 can be computed as half the second derivative of z cot z at z = 0. (We factor out the singular term which is here z-3 and expand the rest of the integrand in a Taylor series to get z-1 coefficient.)
Since sin z goes as 
which can be written as 
The residue of 
at z = 0 is therefore 
and we obtain the conclusion
or
You can actually sum the first 128 (or 1024) terms of this sum on a spreadsheet and extrapolate by comparing the sum up to different powers of 2. If you extrapolate first forming S2(k) = S(2k)-S(2k-1), then S3(k) = (4S2(k)-S2(k-1))/3 then S4(k) = (8S3(k)-S3(k-1))/7, etc. You can get this answer to enormous accuracy numerically and verify this conclusion.
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