The norm operation on complex numbers has the following properties
The triangle inequality: \(\CAbs{ w + z } \leq \CAbs{w} + \CAbs{z}\).
Non degeneracy: \(\CAbs{z} = 0\) if and only if \(z=0\).
\(\CAbs{ \CCnjgt{z} } = \CAbs{ z }\).
\(\CAbs{ z }^2 = z\CCnjgt{z}\)
Commutes with complex multiplication: \(\CAbs{wz} = \CAbs{w} \CAbs{z}\).
The triangle inequality and the non degeneracy properties are valid for the Euclidean norm on \(\RNrSpc{n}\).
iii. \(\CAbs{ \CCnjgt{z} } = \CAbs{ z }\)This identity follows by computation: if \(z=x+yi\), then
| \(\CAbs{ \CCnjgt{z} }\) | \(=\) | \(\CAbs{ x-yi }\) |
| \(\) | \(=\) | \(\sqrt{ x^2 + (-y)^2}\) |
| \(\) | \(=\) | \(\sqrt{ x^2 + (y)^2}\) |
| \(\) | \(=\) | \(\CAbs{z}\) |
This identity follows by conjugation: if \(z=x+yi\), then
| \(z\CCnjgt{z}\) | \(=\) | \((x+yi)(x-yi)\) |
| \(\) | \(=\) | \(x^2 + y^2\) |
| \(\) | \(=\) | \(\CAbs{z}^2\) |
We offer two independent arguments: The first is by direct computation; the second uses properties of complex conjugation.
Proof 1 by direct computation. Suppose \(w=u+vi\), and \(z=x+yi\). Then we find
| \(\CAbs{ w\cdot z }\) | \(=\) | \(\CAbs{ (u+vi)(x+yi) }\) |
| \(\) | \(=\) | \(\CAbs{ ux-vy + (uy+vx)i }\) |
| \(\) | \(=\) | \(\sqrt{ (ux-vy)^2 + (uy+vx)^2 }\) |
| \(\) | \(=\) | \(\sqrt{ u^2x^2 - 2uxvy +v^2y^2 + u^2y^2 +2uyvx + v^2x^2 }\) |
| \(\) | \(=\) | \(\sqrt{ (u^2 + v^2)(x^2 + y^2)}\) |
| \(\) | \(=\) | \(\CAbs{w} \CAbs{z}\) |
Proof 2 using properties of complex conjugation. We also invoke the fact that the squaring function is injective (1 to 1) when restricted to the nonnegative numbers:
| \(\CAbs{ w\cdot z }^2\) | \(= \) | \(w\cdot z\cdot \CCnjgt{w}{z}\) |
| \(\) | \(= \) | \(w\cdot z\cdot \CCnjgt{w}\cdot \CCnjgt{z}\) |
| \(\) | \(= \) | \(w\cdot \CCnjgt{w}\cdot z\cdot \CCnjgt{z}\) |
| \(\) | \(=\) | \(\CAbs{w}^2 \cdot \CAbs{z}^2\) |
| \(\) | \(=\) | \(\left( \CAbs{w}\cdot \CAbs{z} \right)^2\) |
Now, each of these norms is a nonnegative real number. Therefore \(\CAbs{w\cdot z} = \CAbs{w}\cdot \CAbs{z}\) as claimed.