Misplaced Pages

Jordan's lemma

Article snapshot taken from Wikipedia with creative commons attribution-sharealike license. Give it a read and then ask your questions in the chat. We can research this topic together.
Theorem in complex analysis

In complex analysis, Jordan's lemma is a result frequently used in conjunction with the residue theorem to evaluate contour integrals and improper integrals. The lemma is named after the French mathematician Camille Jordan.

Statement

Consider a complex-valued, continuous function f, defined on a semicircular contour

C R = { R e i θ θ [ 0 , π ] } {\displaystyle C_{R}=\{Re^{i\theta }\mid \theta \in \}}

of positive radius R lying in the upper half-plane, centered at the origin. If the function f is of the form

f ( z ) = e i a z g ( z ) , z C , {\displaystyle f(z)=e^{iaz}g(z),\quad z\in C,}

with a positive parameter a, then Jordan's lemma states the following upper bound for the contour integral:

| C R f ( z ) d z | π a M R where M R := max θ [ 0 , π ] | g ( R e i θ ) | . {\displaystyle \left|\int _{C_{R}}f(z)\,dz\right|\leq {\frac {\pi }{a}}M_{R}\quad {\text{where}}\quad M_{R}:=\max _{\theta \in }\left|g\left(Re^{i\theta }\right)\right|.}

with equality when g vanishes everywhere, in which case both sides are identically zero. An analogous statement for a semicircular contour in the lower half-plane holds when a < 0.

Remarks

  • If f is continuous on the semicircular contour CR for all large R and
lim R M R = 0 {\displaystyle \lim _{R\to \infty }M_{R}=0} (*)
then by Jordan's lemma lim R C R f ( z ) d z = 0. {\displaystyle \lim _{R\to \infty }\int _{C_{R}}f(z)\,dz=0.}
  • For the case a = 0, see the estimation lemma.
  • Compared to the estimation lemma, the upper bound in Jordan's lemma does not explicitly depend on the length of the contour CR.

Application of Jordan's lemma

The path C is the concatenation of the paths C1 and C2.

Jordan's lemma yields a simple way to calculate the integral along the real axis of functions f(z) = e g(z) holomorphic on the upper half-plane and continuous on the closed upper half-plane, except possibly at a finite number of non-real points z1, z2, …, zn. Consider the closed contour C, which is the concatenation of the paths C1 and C2 shown in the picture. By definition,

C f ( z ) d z = C 1 f ( z ) d z + C 2 f ( z ) d z . {\displaystyle \oint _{C}f(z)\,dz=\int _{C_{1}}f(z)\,dz+\int _{C_{2}}f(z)\,dz\,.}

Since on C2 the variable z is real, the second integral is real:

C 2 f ( z ) d z = R R f ( x ) d x . {\displaystyle \int _{C_{2}}f(z)\,dz=\int _{-R}^{R}f(x)\,dx\,.}

The left-hand side may be computed using the residue theorem to get, for all R larger than the maximum of |z1|, |z2|, …, |zn|,

C f ( z ) d z = 2 π i k = 1 n Res ( f , z k ) , {\displaystyle \oint _{C}f(z)\,dz=2\pi i\sum _{k=1}^{n}\operatorname {Res} (f,z_{k})\,,}

where Res(f, zk) denotes the residue of f at the singularity zk. Hence, if f satisfies condition (*), then taking the limit as R tends to infinity, the contour integral over C1 vanishes by Jordan's lemma and we get the value of the improper integral

f ( x ) d x = 2 π i k = 1 n Res ( f , z k ) . {\displaystyle \int _{-\infty }^{\infty }f(x)\,dx=2\pi i\sum _{k=1}^{n}\operatorname {Res} (f,z_{k})\,.}

Example

The function

f ( z ) = e i z 1 + z 2 , z C { i , i } , {\displaystyle f(z)={\frac {e^{iz}}{1+z^{2}}},\qquad z\in {\mathbb {C} }\setminus \{i,-i\},}

satisfies the condition of Jordan's lemma with a = 1 for all R > 0 with R ≠ 1. Note that, for R > 1,

M R = max θ [ 0 , π ] 1 | 1 + R 2 e 2 i θ | = 1 R 2 1 , {\displaystyle M_{R}=\max _{\theta \in }{\frac {1}{|1+R^{2}e^{2i\theta }|}}={\frac {1}{R^{2}-1}}\,,}

hence (*) holds. Since the only singularity of f in the upper half plane is at z = i, the above application yields

e i x 1 + x 2 d x = 2 π i Res ( f , i ) . {\displaystyle \int _{-\infty }^{\infty }{\frac {e^{ix}}{1+x^{2}}}\,dx=2\pi i\,\operatorname {Res} (f,i)\,.}

Since z = i is a simple pole of f and 1 + z = (z + i)(zi), we obtain

Res ( f , i ) = lim z i ( z i ) f ( z ) = lim z i e i z z + i = e 1 2 i {\displaystyle \operatorname {Res} (f,i)=\lim _{z\to i}(z-i)f(z)=\lim _{z\to i}{\frac {e^{iz}}{z+i}}={\frac {e^{-1}}{2i}}}

so that

cos x 1 + x 2 d x = Re e i x 1 + x 2 d x = π e . {\displaystyle \int _{-\infty }^{\infty }{\frac {\cos x}{1+x^{2}}}\,dx=\operatorname {Re} \int _{-\infty }^{\infty }{\frac {e^{ix}}{1+x^{2}}}\,dx={\frac {\pi }{e}}\,.}

This result exemplifies the way some integrals difficult to compute with classical methods are easily evaluated with the help of complex analysis.

This example shows that Jordan's lemma can be used instead of a much simpler estimation lemma. Indeed, estimation lemma suffices to calculate e i x 1 + x 2 d x {\displaystyle \int _{-\infty }^{\infty }{\frac {e^{ix}}{1+x^{2}}}\,dx} , as well as cos x 1 + x 2 d x {\displaystyle \int _{-\infty }^{\infty }{\frac {\cos x}{1+x^{2}}}\,dx} , Jordan's lemma here is unnecessary.

Proof of Jordan's lemma

By definition of the complex line integral,

C R f ( z ) d z = 0 π g ( R e i θ ) e i a R ( cos θ + i sin θ ) i R e i θ d θ = R 0 π g ( R e i θ ) e a R ( i cos θ sin θ ) i e i θ d θ . {\displaystyle \int _{C_{R}}f(z)\,dz=\int _{0}^{\pi }g(Re^{i\theta })\,e^{iaR(\cos \theta +i\sin \theta )}\,iRe^{i\theta }\,d\theta =R\int _{0}^{\pi }g(Re^{i\theta })\,e^{aR(i\cos \theta -\sin \theta )}\,ie^{i\theta }\,d\theta \,.}

Now the inequality

| a b f ( x ) d x | a b | f ( x ) | d x {\displaystyle {\biggl |}\int _{a}^{b}f(x)\,dx{\biggr |}\leq \int _{a}^{b}\left|f(x)\right|\,dx}

yields

I R := | C R f ( z ) d z | R 0 π | g ( R e i θ ) e a R ( i cos θ sin θ ) i e i θ | d θ = R 0 π | g ( R e i θ ) | e a R sin θ d θ . {\displaystyle I_{R}:={\biggl |}\int _{C_{R}}f(z)\,dz{\biggr |}\leq R\int _{0}^{\pi }{\bigl |}g(Re^{i\theta })\,e^{aR(i\cos \theta -\sin \theta )}\,ie^{i\theta }{\bigr |}\,d\theta =R\int _{0}^{\pi }{\bigl |}g(Re^{i\theta }){\bigr |}\,e^{-aR\sin \theta }\,d\theta \,.}

Using MR as defined in (*) and the symmetry sin θ = sin(πθ), we obtain

I R R M R 0 π e a R sin θ d θ = 2 R M R 0 π / 2 e a R sin θ d θ . {\displaystyle I_{R}\leq RM_{R}\int _{0}^{\pi }e^{-aR\sin \theta }\,d\theta =2RM_{R}\int _{0}^{\pi /2}e^{-aR\sin \theta }\,d\theta \,.}

Since the graph of sin θ is concave on the interval θ ∈ , the graph of sin θ lies above the straight line connecting its endpoints, hence

sin θ 2 θ π {\displaystyle \sin \theta \geq {\frac {2\theta }{\pi }}\quad }

for all θ ∈ , which further implies

I R 2 R M R 0 π / 2 e 2 a R θ / π d θ = π a ( 1 e a R ) M R π a M R . {\displaystyle I_{R}\leq 2RM_{R}\int _{0}^{\pi /2}e^{-2aR\theta /\pi }\,d\theta ={\frac {\pi }{a}}(1-e^{-aR})M_{R}\leq {\frac {\pi }{a}}M_{R}\,.}

See also

References

  • Brown, James W.; Churchill, Ruel V. (2004). Complex Variables and Applications (7th ed.). New York: McGraw Hill. pp. 262–265. ISBN 0-07-287252-7.
Categories: