Difference between revisions of "Aufgaben:Exercise 2.6Z: Signal-to-Noise Ratio"

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===Musterlösung===
 
===Musterlösung===
 
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'''(1)'''  Das Leistungsdichtespektrum eines Cosinussignals mit der Amplitude  $A$  besteht aus zwei Diraclinien, jeweils mit Gewicht  $A^2/4$.  
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'''(1)'''  The power density spectrum of a cosine signal with amplitude   $A$  consists of two Dirac lines, each with weight   $A^2/4$.
*Die Leistung ergibt sich aus dem Integral über das LDS und ist somit gleich der Summe der beiden Diracgewichte.  Mit  $A = 4 \ \rm V$  erhält man somit für die Leistung des Quellensignals:
+
*The power is obtained from the integral over the PDS and is thus equal to the sum of the two Dirac weights. Thus, when nbsp; $A = 4 \ \rm V$ , we obtain the power of the source signal:
 
:$$ P_q = \frac{A^2}{2} \hspace{0.15cm}\underline {= 8\,{\rm V^2}} \hspace{0.05cm}.$$
 
:$$ P_q = \frac{A^2}{2} \hspace{0.15cm}\underline {= 8\,{\rm V^2}} \hspace{0.05cm}.$$
*Beim Modulationsverfahren „ZSB-AM ohne Träger” ist dies gleichzeitig die auf den Einheitswiderstand  $1\ \rm  Ω$  bezogene Sendeleistung $P_{\rm S}$.
+
*For the modulation method "DSB-AM without a carrier", this is also the transmit power $P_{\rm S}$ in reference to the unit resistance  $1\ \rm  Ω$ .
  
  
  
'''(2)'''  Nach den elementaren Gesetzen der Elektrotechnik gilt:
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'''(2)'''  According to the elementary laws of electrical engineering:
 
:$$P_q = \frac{8\,{\rm V^2}}{50\,{\Omega}} \hspace{0.15cm}\underline {= 0.16\,{\rm W}} \hspace{0.05cm}.$$
 
:$$P_q = \frac{8\,{\rm V^2}}{50\,{\Omega}} \hspace{0.15cm}\underline {= 0.16\,{\rm W}} \hspace{0.05cm}.$$
  
  
  
'''(3)'''  Im Theorieteil wird gezeigt, dass bei idealen Voraussetzungen  $v(t) = q(t)$  gilt.  Zu berücksichtigen ist allerdings:
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'''(3)'''  In the theory section, it is shown that   $v(t) = q(t)$  holds under ideal conditions. However, the following should be taken into account:
*Aus der Grafik erkennt man, dass  $Z_{\rm E}(f) = Z(f)$  gilt.  Damit hat das empfängerseitige Trägersignal  $z_{\rm E}(t)$  wie  $z(t)$  die Amplitude  $1$.
+
*From the graph, it can be seen that  $Z_{\rm E}(f) = Z(f)$  holds.  Thus, the receiver-side carrier signal   $z_{\rm E}(t)$ , like   $z(t)$ , has amplitude   $1$.
*Im Idealfall müsste aber das empfängerseitige Trägersignal  $z_{\rm E}(t)$  die Amplitude   $2$  besitzen.
+
*Ideally, however, the receiver-side carrier signal   $z_{\rm E}(t)$  should have amplitude    $2$ .
*Deshalb gilt gilt hier $υ(t) = q(t)/2$.  
+
*Therefore, $υ(t) = q(t)/2$ applies here.  
*Berücksichtigt man weiter die Kanaldämpfung  $α_{\rm K} = 10^{–4}$, so erhält man das Endergebnis:   $α\hspace{0.15cm}\underline { = 0.5 · 10^{–4}}.$
+
*If we further consider the channel attenuation   $α_{\rm K} = 10^{–4}$, we obtain the final result:
 +
  $α\hspace{0.15cm}\underline { = 0.5 · 10^{–4}}.$
  
  

Revision as of 18:02, 3 December 2021

Diverse Power Density Spectra

In the following exercise, we assume:

  • a cosine source signal:
$$ q(t) = 4 \,{\rm V} \cdot \cos(2 \pi \cdot 5\,{\rm kHz} \cdot t )\hspace{0.05cm},$$
  • DSB–AM by multiplication with
$$z(t) = 1 \cdot \cos(2 \pi \cdot 20\,{\rm kHz} \cdot t )\hspace{0.05cm},$$
  • a frequency-independent attenuation on the channel corresponding to  $α_{\rm K} = 10^{–4}$,
  • additive white input noise with noise power density  $N_0 = 4 · 10^{–19} \ \rm W/Hz$,
  • phase- and frequency-synchronous demodulation by multiplication with the same  $z(t)$  as at the transmitter,
  • a rectangular low-pass at the synchronous demodulator with cutoff frequency  $f_{\rm E} = 5 \ \rm kHz$.


In the graph, these specifications are shown in the spectral domain. It should be explicitly mentioned that the power density spectrum  ${\it Φ}_z(f)$  of the cosine oscillation  $z(t)$  is composed of two Dirac lines at  $±f_{\rm T}$  zusammensetzt, as is the amplitude spectrum   $Z(f)$ , but with weight  $A^2/4$  instead of  $A/2$.  The amplitude should always be set to  $A=1$  in this exercise.

The sink signal  $v(t)$  is composed of the useful component  $α · q(t)$  and the noise component  $ε(t)$ .  Thus, the general rule for the signal-to-noise power ratio to be determined is:

$$ \rho_{v } = \frac{\alpha^2 \cdot P_q}{P_\varepsilon}\hspace{0.05cm}.$$

This important quality criterion is often abbreviated to  SNR  (  Signal–to–Noise–Ratio).




Hints:


Questions

1

Calculate the transmit power with respect to the unit resistance  $R = 1 \ \rm Ω$.

$P_q \ = \ $

$\ \rm V^2$

2

What is the power  $P_q$  in watts for the resistor  $R = 50 \ \rm Ω$?

$P_q \ = \ $

$\ \rm W$

3

Which damping factor  $α$  results for the whole system?

$α \ = \ $

$\ \cdot 10^{-4}$

4

Calculate the power density of the noise component  $ε(t)$  at the output.  What is the value when  $f = 0$?  Let  $H_{\rm E}(f = 0) = 1$.

${\it Φ}_ε(f = 0) \ = \ $

$\ \cdot 10^{-19} \ \rm W/Hz$

5

What is the noise power of the sink signal?

$P_ε \ = \ $

$\ \cdot 10^{-15} \ \rm W$

6

What is the signal-to-noise power ratio (SNR) at the sink? What is the resulting dB value?

$ρ_v \ = \ $

$10 · \lg ρ_v \ = \ $

$\ \rm dB$


Musterlösung

(1)  The power density spectrum of a cosine signal with amplitude   $A$  consists of two Dirac lines, each with weight   $A^2/4$.

  • The power is obtained from the integral over the PDS and is thus equal to the sum of the two Dirac weights. Thus, when nbsp; $A = 4 \ \rm V$ , we obtain the power of the source signal:
$$ P_q = \frac{A^2}{2} \hspace{0.15cm}\underline {= 8\,{\rm V^2}} \hspace{0.05cm}.$$
  • For the modulation method "DSB-AM without a carrier", this is also the transmit power $P_{\rm S}$ in reference to the unit resistance  $1\ \rm Ω$ .


(2)  According to the elementary laws of electrical engineering:

$$P_q = \frac{8\,{\rm V^2}}{50\,{\Omega}} \hspace{0.15cm}\underline {= 0.16\,{\rm W}} \hspace{0.05cm}.$$


(3)  In the theory section, it is shown that   $v(t) = q(t)$  holds under ideal conditions. However, the following should be taken into account:

  • From the graph, it can be seen that  $Z_{\rm E}(f) = Z(f)$  holds.  Thus, the receiver-side carrier signal   $z_{\rm E}(t)$ , like   $z(t)$ , has amplitude   $1$.
  • Ideally, however, the receiver-side carrier signal   $z_{\rm E}(t)$  should have amplitude   $2$ .
  • Therefore, $υ(t) = q(t)/2$ applies here.
  • If we further consider the channel attenuation   $α_{\rm K} = 10^{–4}$, we obtain the final result:

  $α\hspace{0.15cm}\underline { = 0.5 · 10^{–4}}.$


(4)  Das Leistungsdichtespektrum des Produktes  $n(t) · z(t)$  ergibt sich aus der Faltung der beiden Leistungsdichtespektren von  $n(t)$  und  $z(t)$:

$$ {\it \Phi}_\varepsilon \hspace{0.01cm} '(f) = {\it \Phi}_n (f) \star {\it \Phi}_{z }(f)= \frac{N_0}{2} \star \left[\delta(f - f_{\rm T}) + \delta(f + f_{\rm T}) \right]= N_0 \hspace{0.05cm}.$$
  • Für das Leistungsdichtespektrum des Signals  $ε(t)$  nach dem Tiefpass erhält man eine Rechteckform mit dem gleichen Wert bei  $f = 0$:
$${\it \Phi}_\varepsilon (f) = {\it \Phi}_\varepsilon \hspace{0.01cm} '(f) \cdot |H_{\rm E}(f)|^2 \hspace{0.3cm}\Rightarrow \hspace{0.3cm} {\it \Phi}_\varepsilon (f=0)= N_0\hspace{0.15cm}\underline {= 4 \cdot 10^{-19}\,{\rm W/Hz}} \hspace{0.05cm}.$$


(5)  Die Rauschleistung ist das Integral über die Rauschleistungsdichte:

$$ P_{\varepsilon} = \int_{-f_{\rm E}}^{ + f_{\rm E}} {{\it \Phi}_\varepsilon (f)}\hspace{0.1cm}{\rm d}f = N_0 \cdot 2 f_{\rm E} = 4 \cdot 10^{-19}\,\frac{ \rm W}{\rm Hz} \cdot 10^{4}\,{\rm Hz} \hspace{0.15cm}\underline {= 4 \cdot 10^{-15}\,{\rm W}}\hspace{0.05cm}.$$


(6)  Aus den Ergebnissen der Teilaufgaben  (2)(3)  und  (5)  folgt:

$$\rho_{v } = \frac{\alpha^2 \cdot P_q}{P_\varepsilon} = \frac{(0.5 \cdot 10^{-4})^2 \cdot 0.16\,{\rm W}}{4 \cdot 10^{-15}\,{\rm W}} \hspace{0.15cm}\underline {= 100000} \hspace{0.3cm}\Rightarrow \hspace{0.3cm}10 \cdot {\rm lg }\hspace{0.1cm}\rho_{v } \hspace{0.15cm}\underline {= 50\,{\rm dB}}\hspace{0.05cm}.$$