3.0 KiB
lecture, date
| lecture | date |
|---|---|
| 18 | 2025-03-20 |
Overview of Complex Analysis of the Course
- Will do analysis using complex numbers.
- Concrete Goal: compute integrals such as
\int_{-\infty}^{+\infty} \frac{e^{i \omega t}}{t^2 + a^2} \, dt = \frac{\pi}{a}e^{-a\mid \omega \mid}(a \gt 0) using complex techniques.
Complex Numbers
The definition of a Complex Numbers as defined in the lecture.
All algebraic properties follow from the definition. For instance
(x_{1}+iy_{1})(x_{2}+iy_{2}) = (x_{1}x_{2} -y_{1}y_{2}) + i(x_{1}y_{2} + y_{1}x_{2}).
This operation is commutative, that is z_{1}z_{2} = z_{2}z_{1}.
Proposition
Let z = x+iy, and it should be non-zero. Then there exists another complex number z^{-1} \in \mathbb{C} such that zz^{-1} = 1. It is given by
z^{-1} = \frac{x-iy}{x^2 + y^2}
Proof
We compute
(x + iy)(x-iy) = x^2 + y^2.
This is non-zero. Then
zz^{-1} = (x+iy) \frac{x-iy}{x^2 + y^2} = 1
[!info] Remark This means that
\mathbb{C}is a field like\mathbb{R}.
Definition - Absolute Value
Let z = x+iy. Its absolute value (or Norm) is defined by
\mid z \mid \sqrt{ x^2 + y^2 }.
An argument for z is a real number \phi \in \mathbb{R} such that
x = \mid z \mid \cos \phi, \; y = \mid z \mid \sin \phi.
This allows us to identify complex numbers with points in the plane \mathbb{R}^2:
!
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(note that angles are only defined up to multiples of 2\pi).
You could multiply pairs in \mathbb{R}^2 by
(x_{1},y_{1}) \times (x_{2}, y_{2}) = (x_{1}x_{2}, y_{1}y_{2}).
But this does not correspond to the multiplication of complex numbers.
Polar Form
- Using the previous definitions, we can write any
z \in \mathbb{C}as:
z = x + iy = \mid z \mid (\cos \phi + i \sin \phi).
Definition
We introduce the following notations:
r := \mid z \mid,
e^{i\phi} := \cos \phi + i \sin \phi.
Then we have that z = r e^{i\phi}, which we call the polar form of z.
[!info] Remark For now,
e^{i\phi}is just a symbol. Later we will identify it with the Complex Exponential Function
We have that e^{i\phi} shares many properties with e^{x}.
Proposition
Let \phi, \; \theta \in \mathbb{R}. Then:
e^{i \phi} e^{i \theta} = e^{i (\phi + \theta)},e^{i 0} = 1,\frac{1}{e^{i \phi}} = e^{-i \phi},e^{i(\phi + 2 \pi k)} = e^{i \phi}, fork \in \mathbb{Z},\mid e^{i \phi} = 1,\frac{d e^{i \phi}}{d \phi} = i e^{i \phi}.
Proof (only for 3.)
According to a previous result, we have:
(\cos \phi + i \sin \phi)^{-1} = \frac{\cos \phi - i \sin \phi}{\overbrace{(\cos \phi)^2 + (\sin \phi)^2}^{=1}}
= \cos \phi - i \sin \phi
= e^{- i \phi},
using \cos(-\phi) = \cos \phi and \sin(-\phi) = -\sin \phi.
Complex Conjugation
Definition Complex Conjugation as defined in the lecture.