Difference between revisions of "Aufgaben:Exercise 2.4Z: Finite and Infinite Fields"

A polynomial of degree $m$ is called reducible in the field $\mathcal{F}$ if it is in the form

$$p(x)= \prod_{i = 1}^m (x-x_i) = (x - x_1) \cdot (x - x_2) \cdot \hspace{0.05cm}\text{ ...}\hspace{0.05cm} \cdot (x - x_m) $$

can be represented and is valid for all zeros $x_i ∈ \mathcal{F}$. If this is not possible, one speaks of an irreducible polynomial.

In real number space, for each  $m = 2$  zeros  $x_1$  and  $x_2$ hold:

$$p_1(x) \text{:}\hspace{0.3cm}x_1 \hspace{-0.15cm} \ = \ \hspace{-0.15cm} +{\rm j}\hspace{0.05cm},\hspace{0.2cm}x_2 = -{\rm j}\hspace{0.05cm},$$

$$p_2(x) \text{:}\hspace{0.3cm}x_1 \hspace{-0.15cm} \ = \ \hspace{-0.15cm} +1\hspace{0.05cm},\hspace{0.2cm}x_2 = -1\hspace{0.05cm},$$

$$p_3(x) \text{:}\hspace{0.3cm}x_1 \hspace{-0.15cm} \ = \ \hspace{-0.15cm} -0.5 + {\rm j} \cdot \sqrt{3}/2 \hspace{0.05cm},\hspace{0.2cm}x_2 = -0.5 - {\rm j} \cdot \sqrt{3}/2\hspace{0.05cm},$$

$$p_4(x) \text{:}\hspace{0.3cm}x_1 \hspace{-0.15cm} \ = \ \hspace{-0.15cm} +1\hspace{0.05cm},\hspace{0.2cm}x_2 = -2\hspace{0.05cm}.$$

Thus the proposed solutions 1 and 3 are correct:

• The two zeros of $p_2(x)$ and $p_4(x)$ are both real. Thus, these are certainly reducible polynomials.
• The other two polynomials, on the other hand, have no real zeros (rather imaginary or complex ones) and are irreducible in the real field according to the above definition.

(2)  Correct is the proposed solution 3: $p_3 = x^2 + x + 1$  is the only irreducible polynomial in the Galois field  $\rm GF(2^2)$. In the "theory section" the additions and the multiplication table were given for this.

For the other polynomials holds:

• The polynomial  $p_1(x)$  is reducible in  ${\rm GF}(2) = \{0, \, 1\}$  since this polynomial can be factorized:

$$p_1(x) = x^2 + 1 = (x+1)^2\hspace{0.05cm}.$$

• Since in  $\rm GF(2)$  there is no difference between sum and difference, the polynomial  $p_2(x) = x^2 - 1$  is also reducible.
• The polynomial  $p_4(x) = x^2 + x - 2$ is  unsuitable for  $\rm GF(2)$  alone, since not all polynomial coefficients are $0$ or $1$.
• The "$2$" would only be possible in the Galois field $\rm GF(3)$.

(3)  Correct are the last three proposed solutions:

• The set  $\mathcal{N}$  is not a field, since already the subtraction is not allowed for all elements, for example  $2 - 3 = -1 ∉ \mathcal{N}$.
• Also the set  $\mathcal{Z}$  of integers is not a field, since for example the equation  $2 \cdot z = 1$  is not to be satisfied for any  $z ∈ \mathcal{N}$ .

(4)  Correct are answers 1 and 3:

• It is $\mathcal{Q} ⊂ \mathcal{R}$ (rational numbers are a subset of real numbers) and $\mathcal{R} ⊂ \mathcal{C}$ (real numbers are a subset of the complex numbers).
• Thus also $\mathcal{Q} ⊂ \mathcal{C}$.
• For finite fields, ${\rm GF}(2^m) ⊂ {\rm GF}(2^M)$ means that $m < M$ must hold.

(5)  Correct is the proposed solution 2:

• The set  $\mathcal{C}$  of complex numbers is an extension of the real numbers  $(\mathcal{R})$  into a second dimension. For this can be written:

$$\mathcal{C} = \{k_0 + {\rm j} \cdot k_1\hspace{0.05cm}| \hspace{0.05cm}k_0 \in {\mathcal{R}}, k_1 \in \mathcal{R}\}\hspace{0.05cm}.$$

• $\rm GF(2^2)$  is an extension of the finite field  $\rm GF(2) = \{0, \, 1\}$  into a second dimension:

$${\rm GF}(2^2) = \{k_0 + \alpha \cdot k_1\hspace{0.05cm}| \hspace{0.05cm}k_0 \in {\rm GF}(2), k_1 \in {\rm GF}(2)\}\hspace{0.05cm}.$$

• The imaginary unit  ${\rm j} ∉ \mathcal{C}$  results as the solution of the equation  ${\rm j}^2 + 1 = 0$, while the new element of  $\rm GF(2^2)$  is denoted by  $\alpha ∉ \rm GF(2)$  and follows from the equation  $\alpha^2 + \alpha + 1 = 0$ .