Singularities/Residues/ Applications 695(9.11-14)Hence by using the residue theorem and the estimates (9.11-12) to
(9.11-14), we haveIf we first let Ra ~ oo, then R2 ~ oo, and finally Ri ~ oo (independently
of each other), we obtain1
+00 m
eiax J(x) dx = 27l"i L Res eiaz J(z)
-oo k=l z=b1c(9.11-15)In particular, the result applies to rational functions f(z) = P(z)/Q(z)
with the degree of Q exceeding the degree of P by at least one.
After applying (9.11-15) it remains to equate real and imaginary parts
in that equation to evaluate the given integrals.Example To evaluate f 0
00
[(xsinax)/(x^2 + b^2 )]dx, a> 0, b > 0.
Consider the complex integral
J
zeiaz
2 b2 dz
z +
c+where c+ = [-R,R] + r+, with r+: z = Rei^9 , 0 $ (} $ 71", R > b. Inside
c+ the integrand has a simple pole at z = ib, and
zeiaz ibe-ab 1
Res = --= -e-ab
z=ib z2 + b^2 2ib 2The rational function f(z) = z/(z^2 + b^2 ) is continuous on r+ for R > b,
and the degree of the denominator exceeds the degree of the numerator
by one, so that
izi R
lf(z)I $ lzl2 -b2 = --R2,,......_-b=2 ~ 0