Exercise 3.5Z: Antenna Areas

(1)  There is a uniform distribution and it is true for the PDF in the range  $-\pi < \alpha \le +\pi$:  

$$f_\alpha(\alpha)={\rm 1}/({\rm 2\cdot \pi}).$$

• For  $\alpha = 0$  this gives – as for all allowed values also – the PDF value : $$f_\alpha(\alpha =0) \hspace{0.15cm}\underline{=0.159}.$$

(2)  It holds  ${\rm E}\big[\alpha\big] = 0$   ⇒   Answer 1.

• It has no effect that  $\alpha = +\pi$  is allowed, but  $\alpha = -\pi$  is excluded.

(3)  Für the variance or scatter of the angle of incidence  $\alpha$  holds:

$$\sigma_{\alpha}^{\rm 2}=\int_{-\rm\pi}^{\rm\pi}\hspace{-0.1cm}\it\alpha^{\rm 2}\cdot \it f_{\alpha}(\alpha)\,\,{\rm d} \alpha=\frac{\rm 1}{\rm 2\cdot\it \pi}\cdot \frac{\alpha^{\rm 3}}{\rm 3}\Bigg|_{\rm -\pi}^{\rm\pi}=\frac{\rm 2\cdot\pi^{3}}{\rm 2\cdot\rm \pi\cdot \rm 3}=\frac{\rm \pi^2}{\rm 3} = \rm 3. 29. \hspace{0.5cm}\Rightarrow \hspace{0.5cm}\sigma_{\alpha}\hspace{0.15cm}\underline{=1.814}.$$

(4)  Since the given section of the circle is exactly one quarter of the total circle area, the probability we are looking for is

$${\rm Pr}(-π/4 ≤ α ≤ +π/4)\hspace{0.15cm}\underline{=25\%}.$$

(5)  From simple geometrical ¨considerations  (right-angled triangle, marked dark blue in the adjacent sketch)  one obtains the equation of determination for the angle  $\alpha_0$:

$$\cos(\pi-\alpha_{\rm 0}) = \frac{R/ 2}{R}={\rm 1}/{\rm 2}\hspace{0.5cm}\Rightarrow\hspace{0.5cm}\rm\pi-\it\alpha_{\rm 0}=\frac{\rm\pi}{\rm 3} \hspace{0.2cm}\rm( 60^{\circ}).$$

• It follows  $\alpha_0 = \pi/3\hspace{0.15cm}\underline{=2.094}.$
• This corresponds  $\alpha_0 \hspace{0.15cm}\underline{=120^\circ}$.

(6)  Correct Suggested solution 3:

• The probability density function (PDF)  $f_\alpha(\alpha)$  is f  for a given angle  $\alpha$  directly proportional to the distance  $A$  between the antenna and the boundary line.
• For  $\alpha = \pm 2\pi/3 = \pm 120^\circ$  against  $A = R$,  for  $\alpha \pm \pi = \pm 180^\circ$  against  $A = R/2$.
• In between the distance becomes successively smaller.  This means:   The PDF decreases towards the boundary.
• The decrease follows the following course:

$$\it A=\frac{\it R/\rm 2}{\rm cos(\rm \pi-\it\alpha)}.$$

(7)  The area $G$ can be calculated from the sum of the  $240^\circ$–sector and the triangle formed by the vertices  $\rm UVW$  :

$$G=\frac{\rm 2}{\rm 3}\cdot \it R^{\rm 2}\cdot{\rm \pi} \ {\rm +} \ \frac{\it R}{\rm 2}\cdot \it R\cdot \rm sin(\rm 60^{\circ}) = \it R^{\rm 2}\cdot \rm\pi\cdot (\frac{\rm 2}{\rm 3}+\frac{\rm \sqrt{3}}{\rm 4\cdot\pi}).$$

• The probability we are looking for is given by the ratio of the areas  $F$  and  $G$  (see sketch):

$$\rm Pr(\rm -\pi/4\le\it\alpha\le+\rm\pi/4)=\frac{\it F}{\it G}=\frac{1/4}{2/3+{\rm sin(60^{\circ})}/({\rm 2\pi})}=\frac{\rm 0.25}{\rm 0.805}\hspace{0.15cm}\underline{=\rm 31.1\%}.$$

• Although nothing has changed from point  (4)  at the area  $F$  the probability now becomes larger by a factor  $1/0.805 ≈ 1.242$  due to the smaller area  $G$ .

(8)  Since the overall PDF area is constantly equal  $1$  and the PDF decreases at the boundaries, it must have a larger value in the range  $|\alpha| < 2\pi/3$  than calculated in  (1)  .

• With the results from  (1)  and  (7)  holds:

$$f_{\alpha}(\alpha = 0)=\frac{1/(2\pi)}{2/3+{\rm sin(\rm 60^{\circ})}/({\rm 2\pi})} = \frac{\rm 1}{{\rm 4\cdot\pi}/{\rm 3}+\rm sin(60^{\circ})}\hspace{0.15cm}\underline{\approx \rm 0.198}.$$

• Like the probability calculated in item  (7)  also simultaneously the PDF value in the range  $|\alpha| < 2\pi/3$  increases by a factor  $1.242$  as the coverage area becomes smaller.