Difference between revisions of "Aufgaben:Exercise 3.11: Pre-Emphase and De-Emphase"

Latest revision as of 14:48, 30 March 2022

Realization of a pre-emphase

In voice and audio signal transmission, the signal frequency band is pre-distorted before the FM modulator via an RC high-pass filter according to the diagram. This measure is called "pre-emphasis" $\rm (PE)$ .

The amplitude response of the preemphasis network, together with

the two cutoff frequencies $f_{\rm G1} = (2π · R_1 · C)^{–1}$ and $f_{\rm G2} = f_{\rm G1}/α_0$ , as well as
the DC signal transmission factor $α_0 = R_2/(R_1 + R_2)$

is given by:

$|H_{\rm PE} (f)| = \alpha_0 \cdot \sqrt{\frac{1 + (f/f_{\rm G1})^2}{1 + (f/f_{\rm G2})^2}} \hspace{0.05cm}.$

For practical purposes, we can assume that the maximum message frequency $f_{\rm N}$ is much smaller than $f_{\rm G2}$ .

If we further consider that the DC signal transmission factor $α_0$ can be changed by an amplification of nbsp; $α$ , we can further assume the following pre-emphasis frequency response where $(f_{\rm G} = f_{\rm G1} = 3 \ \rm kHz)$ :

$|H_{\rm PE} (f)| \approx \alpha \cdot \sqrt{{1 + \left({f}/{f_{\rm G}}\right)^2}} \hspace{0.05cm}.$

In this network, the frequency deviation is $Δf_{\rm A}$ as a function of the message frequency $f_{\rm N}$ :

$\Delta f_{\rm A} (f_{\rm N}) = \Delta f_{\rm A, \hspace{0.08cm}min} \cdot \sqrt{{1 + \left({f_{\rm N}}/{f_{\rm G}}\right)^2}} \hspace{0.05cm}.$

Here $Δf_\text{A, min}$ is the frequency deviation for very small frequencies $(f_{\rm N} → 0)$ .
This parameter should be chosen so that the maximum frequency deviation $Δf_\text{A, max}$ does not exceed $45 \ \rm kHz$ .

In order not to distort the useful signal, this pre-emphasis must be rebalanced by a "de-emphasis" network at the receiver. The goal and purpose of preemphasis/deemphasis is solely to reduce the dependence of the signal-to-noise power ratio on the signal frequency.

In this task, the following quantities are used:

Sink SNR in double-sideband amplitude modulation (DSB-AM) $\rm (DSB–AM)$ :

$\rho_{{\rm AM} } = \frac{P_{\rm S}}{N_0 \cdot f_{\rm N} } = \xi\hspace{0.3cm}\Rightarrow \hspace{0.3cm} 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{{\rm AM} } = 10 \cdot {\rm lg} \hspace{0.15cm}\xi \hspace{0.05cm},$

Sink SNR and sink-to-noise ratio in frequency modulation $\rm (FM)$ without pre-emphasis/de-emphasis:

$\rho_{\rm FM} = {3}/{2 } \cdot \eta^2 \cdot \rho_{\rm AM } \hspace{0.3cm}\Rightarrow \hspace{0.3cm} G_{\rm FM} = 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{\rm FM} - 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{\rm AM}= 10 \cdot {\rm lg} \hspace{0.15cm}{3}/{2 } \cdot \eta^2 \hspace{0.05cm},$

Sink SNR and sink-to-noise ratio in frequency modulation $\rm (FM)$ using pre-emphasis/de-emphasis:

$\rho_{\rm DE} = \frac{(f_{\rm N}/f_{\rm G})^3}{3 \cdot (f_{\rm N}/f_{\rm G} - \arctan (f_{\rm N}/f_{\rm G}) } \hspace{0.3cm}\Rightarrow \hspace{0.3cm} G_{\rm DE} = 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{\rm DE} - 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{\rm FM}\hspace{0.05cm}$

Hints:

This exercise belongs to the chapter Influence of Noise on Systems with Angle Modulation.
Particular reference is made to the section Pre-emphasis and de-emphasis.
Throughout the task, assume a message signal containing frequencies up to and including $B_{\rm NF}= 9 \ \rm kHz$ .

Questions

	$H_{\rm DE}(f)$ is a first-order low-pass filter.
	$H_{\rm DE}(f)$ is a first-order high-pass filter.
	$H_{\rm DE}(f)$ is a bandpass.
	In addition, the factor $α$ must be corrected.

$f_{\rm N} = \text{9 kHz:} \hspace{0.2cm} G_{\rm FM} \ = \$

$\ \rm dB$

$f_{\rm N} = \text{3 kHz:} \hspace{0.2cm} G_{\rm FM} \ = \$

$\ \rm dB$

$f_{\rm N} = \text{1 kHz:} \hspace{0.2cm} G_{\rm FM} \ = \$

$\ \rm dB$

$Δf_\text{A, min} \ = \$

$\ \rm kHz$

$f_{\rm N} = \text{9 kHz:} \hspace{0.2cm} G_{\rm DE} \ = \$

$\ \rm dB$

$f_{\rm N} = \text{3 kHz:} \hspace{0.2cm} G_{\rm DE} \ = \$

$\ \rm dB$

$f_{\rm N} = \text{1 kHz:} \hspace{0.2cm} G_{\rm DE} \ = \$

$\ \rm dB$

Solution

(1) The first and last answer are correct:

The magnitude frequency response of the de-emphasis network is defined as follows:

$|H_{\rm DE} (f)| = \frac{1}{|H_{\rm PE} (f)|}= \frac{1}{\alpha}\cdot \frac{1}{\sqrt{1 + (f/f_{\rm G})^2}} \hspace{0.05cm}.$

The frequency response of a simple RC low-pass filter - also known as a first-order low-pass filter - is:

$H_{\rm RC-TP} (f) = \frac{1}{{1 + {\rm j}\cdot f/f_{\rm G}}} \hspace{0.3cm}\Rightarrow \hspace{0.3cm} |H_{\rm RC-TP} (f)| = \frac{1}{\sqrt{1 + (f/f_{\rm G})^2}}\hspace{0.05cm}.$

(2) The frequency modulation is designed for the maximum frequency $B_{\rm NF} = f_\text{N, max}= 9 \ \rm kHz$ . Then the (maximum) frequency deviation should be $Δf_{\rm A} = 45\ \rm kHz$ .

From this it follows for the modulation index:

$\eta = \frac{\Delta f_{\rm A}}{f_{\rm N} } = 5 \hspace{0.3cm}\Rightarrow \hspace{0.3cm} G_{\rm FM} (f_{\rm N} = 9\,{\rm kHz}) = 10 \cdot {\rm lg} \hspace{0.15cm}(1.5 \cdot 5^2) \hspace{0.15cm}\underline {\approx 15.74\,{\rm dB}} \hspace{0.05cm}.$

Using the message frequency $f_{\rm N} = 3 \ \rm kHz$ results in a modulation index larger by a factor of $3$ and thus a signal-to-noise ratio larger by a factor of $10 · \lg \ 9 = 9.54 \ \rm dB$ :

$G_{\rm FM} (f_{\rm N} = 3\,{\rm kHz}) = 10 \cdot {\rm lg} \hspace{0.15cm}(1.5 \cdot 15^2) \hspace{0.15cm}\underline {\approx 25.28\,{\rm dB}} \hspace{0.05cm}.$

Another gain results from the transition from $3\ \rm kHz$ to $1\ \rm kHz$ :

$G_{\rm FM} (f_{\rm N} = 1\,{\rm kHz}) = 25.28\,{\rm dB} + 9.54\,{\rm dB}\hspace{0.15cm}\underline {= 34.82\,{\rm dB}} \hspace{0.05cm}.$

(3) The maximum frequency deviation is obtained for $f_{\rm N} = B_{\rm NF}$ .

It follows, with $f_{\rm G} = 3 \ \rm kHz$ and $B_{\rm NF} = 9 \ \rm kHz$ :

$\Delta f_{\rm A} (B_{\rm NF}) = \Delta f_{\rm A, \hspace{0.08cm}min} \cdot \sqrt{{1 + \left(\frac{B_{\rm NF}}{f_{\rm G}}\right)^2}} = \sqrt {10} \cdot \Delta f_{\rm A, \hspace{0.08cm}min}= \Delta f_{\rm A, \hspace{0.08cm}max} = 45\,{\rm kHz}$

$\Rightarrow \hspace{0.3cm} \Delta f_{\rm A, \hspace{0.08cm}min} = \frac{45\,{\rm kHz}}{\sqrt {10}}\hspace{0.15cm}\underline {\approx 14.23\,{\rm kHz}}\hspace{0.05cm}.$

(4) Using the given formula, the following "gains due to pre-emphasis/de-emphasis" are obtained:

$G_{\rm DE} (f_{\rm N} = 9\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{(f_{\rm N}/f_{\rm G})^3}{3 \cdot (f_{\rm N}/f_{\rm G} - \arctan (f_{\rm N}/f_{\rm G}) }= 10 \cdot {\rm lg}\hspace{0.15cm} \frac{3^3}{3 \cdot (3 - 1.249) }\hspace{0.15cm}\underline {\approx 7.1\,{\rm dB}}\hspace{0.05cm},$

$G_{\rm DE} (f_{\rm N} = 3\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{1^3}{3 \cdot (1 - \pi/4) }\hspace{0.15cm}\underline {\approx 1.9\,{\rm dB}}\hspace{0.05cm},$

$G_{\rm DE} (f_{\rm N} = 1\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{(1/3)^3}{3 \cdot (1/3 - 0.322) }\hspace{0.15cm}\underline {\approx 0.28\,{\rm dB}}\hspace{0.05cm}.$

@@ Line 1: / Line 1: @@
-{{quiz-Header|Buchseite=Modulationsverfahren/Rauscheinfluss bei Winkelmodulation
+{{quiz-Header|Buchseite=Modulationsverfahren/Rauscheinfluss_bei_Winkelmodulation
 }}
-[[File:P_ID1116__Mod_A_3_10.png|right|]]
+[[File:P_ID1116__Mod_A_3_10.png|right|frame|Realization of a pre-emphase]]
-Bei der Sprach– und Tonsignalübertragung wird das Signalfrequenzband vor dem FM–Modulator über ein RC–Hochpassglied gemäß der Skizze vorverzerrt. Man bezeichnet diese Maßnahme als Preemphase.
+In voice and audio signal transmission, the signal frequency band is pre-distorted before the FM modulator via an RC high-pass filter according to the diagram. This measure is called "pre-emphasis" &nbsp;  $\rm (PE)$ .
-Der Amplitudengang des Preemphase–Netzwerks lautet mit den beiden Grenzfrequenzen  $f_{G1} = (2π · R_1 · C)^{–1}$  und  $f_{G2} = f_{G1}/α_0$  sowie dem Faktor  $α_0 = R_2/(R_1 + R_2)$ :
+The amplitude response of the preemphasis network, together with
- $|H_{\rm PE} (f)| = \alpha_0 \cdot \sqrt{\frac{1 + (f/f_{\rm G1})^2}{1 + (f/f_{\rm G2})^2}} \hspace{0.05cm}.$
+*the two cutoff frequencies &nbsp;$f_{\rm G1} = (2π · R_1 · C)^{–1}$&nbsp; and &nbsp;$f_{\rm G2} = f_{\rm G1}/α_0$, as well as
-Für den praktischen Betrieb kann man davon ausgehen, dass die maximale Nachrichtenfrequenz  $f_N$  sehr viel kleiner als  $f_{G2}$  ist. Berücksichtigt man weiter, dass der Gleichsignalübertragungsfaktor  $α_0$  durch eine Verstärkung in  $α$  verändert werden kann, so ist im Weiteren von folgendem Preemphase–Frequenzgang auszugehen ( $f_G = f_{G1} = 3 kHz$ ):
+*the DC signal transmission factor  &nbsp; $α_0 = R_2/(R_1 + R_2)$
- $|H_{\rm PE} (f)| \approx \alpha \cdot \sqrt{{1 + \left({f}/{f_{\rm G}}\right)^2}} \hspace{0.05cm}.$
+is given by:
-Mit diesem Netzwerk lautet der Frequenzhub  $Δf_A$  in Abhängigkeit der Nachrichtenfrequenz  $f_N$ :
+: $|H_{\rm PE} (f)| = \alpha_0 \cdot \sqrt{\frac{1 + (f/f_{\rm G1})^2}{1 + (f/f_{\rm G2})^2}} \hspace{0.05cm}.$
- $\Delta f_{\rm A} (f_{\rm N}) = \Delta f_{\rm A, \hspace{0.08cm}min} \cdot \sqrt{{1 + \left({f_{\rm N}}/{f_{\rm G}}\right)^2}} \hspace{0.05cm}.$
-Hierbei ist  $Δf-A$ , min der Frequenzhub für sehr kleine Frequenzen ( $f_N → 0$ ). Dieser Parameter ist so zu wählen, dass der maximale Frequenzhub  $Δf_A$ , max nicht größer wird als 45 kHz.
+For practical purposes, we can assume that the maximum message frequency &nbsp; $f_{\rm N}$ &nbsp; is much smaller than &nbsp; $f_{\rm G2}$ &nbsp;.
-Gehen Sie in der gesamten Aufgabe von einem Nachrichtensignal aus, das Frequenzen bis einschließlich $B_{NF} = 9 kHz$ beinhaltet.
+If we further consider that the DC signal transmission factor&nbsp; $α_0$ &nbsp; can be changed by an amplification of nbsp; $α$ &nbsp;, we can further assume the following pre-emphasis frequency response
+where &nbsp;$(f_{\rm G} = f_{\rm G1} = 3 \ \rm  kHz)$:
+: $|H_{\rm PE} (f)| \approx \alpha \cdot \sqrt{{1 + \left({f}/{f_{\rm G}}\right)^2}} \hspace{0.05cm}.$
+In this network, the frequency deviation is &nbsp; $Δf_{\rm A}$ &nbsp; as a function of the message frequency  $f_{\rm N}$ :
+: $\Delta f_{\rm A} (f_{\rm N}) = \Delta f_{\rm A, \hspace{0.08cm}min} \cdot \sqrt{{1 + \left({f_{\rm N}}/{f_{\rm G}}\right)^2}} \hspace{0.05cm}.$
+*Here &nbsp; $Δf_\text{A, min}$ &nbsp; is the frequency deviation for very small frequencies &nbsp; $(f_{\rm N} → 0)$ .
+*This parameter should be chosen so that the maximum frequency deviation &nbsp; $Δf_\text{A, max}$ &nbsp; does not exceed &nbsp;$45 \ \rm kHz$.
-Um das Nutzsignal nicht zu verfälschen, muss diese Vorverzerrung durch ein Deemphase–Netzwerk beim Empfänger wieder ausgeglichen werden. Ziel und Zweck von Preemphase/Deemphase ist es allein, die Abhängigkeit des Signal–zu–Rausch–Leistungsverhältnisses von der Signalfrequenz zu vermindern.
+In order not to distort the useful signal, this pre-emphasis must be rebalanced by a "de-emphasis" network at the receiver.  The goal and purpose of preemphasis/deemphasis is solely to reduce the dependence of the signal-to-noise power ratio on the signal frequency.
-In dieser Aufgabe werden folgende Größen verwendet:
+In this task, the following quantities are used:
-:* Sinken–SNR bei ZSB–AM:
+* Sink SNR in double-sideband amplitude modulation (DSB-AM)&nbsp;   $\rm (DSB–AM)$ :
- $\rho_{{\rm AM} } = \frac{P_{\rm S}}{N_0 \cdot f_{\rm N} } = \xi\hspace{0.3cm}\Rightarrow \hspace{0.3cm} 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{{\rm AM} } = 10 \cdot {\rm lg} \hspace{0.15cm}\xi \hspace{0.05cm},$
+: $\rho_{{\rm AM} } = \frac{P_{\rm S}}{N_0 \cdot f_{\rm N} } = \xi\hspace{0.3cm}\Rightarrow \hspace{0.3cm} 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{{\rm AM} } = 10 \cdot {\rm lg} \hspace{0.15cm}\xi \hspace{0.05cm},$
-:* Sinken–SNR und Störabstandsgewinn bei FM ohne Preemphase/Deemphase:
+* Sink SNR and sink-to-noise ratio in frequency modulation $\rm (FM)$&nbsp; without pre-emphasis/de-emphasis:&nbsp;
-$$ \rho_{ FM} = {3}/{2 } \cdot \eta^2 \cdot \rho_{{\rm AM} } \hspace{0.3cm}\Rightarrow \hspace{0.3cm} G_{ FM} = 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{FM} - 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{ AM}= 10 \cdot {\rm lg} \hspace{0.15cm}{3}/{2 } \cdot \eta^2 \hspace{0.05cm},$$
+:$$ \rho_{\rm FM} = {3}/{2 } \cdot \eta^2 \cdot \rho_{\rm AM  } \hspace{0.3cm}\Rightarrow \hspace{0.3cm}
-:*Sinken–SNR und Störabstandsgewinn bei FM durch Preemphase/Deemphase:
+G_{\rm FM} = 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{\rm FM} -
-$$ \rho_{ DE} = \frac{(f_{\rm N}/f_{\rm G})^3}{3 \cdot (f_{\rm N}/f_{\rm G} - \arctan (f_{\rm N}/f_{\rm G}) } \hspace{0.3cm}\Rightarrow \hspace{0.3cm} G_{ DE} = 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{ DE} - 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{ FM}\hspace{0.05cm}.$$
+\cdot {\rm lg} \hspace{0.15cm}\rho_{\rm AM}= 10 \cdot {\rm
-'''Hinweis:''' Diese Aufgabe bezieht sich auf den Theorieteil von [http://en.lntwww.de/Modulationsverfahren/Rauscheinfluss_bei_Winkelmodulation Kapitel 3.3].
+lg} \hspace{0.15cm}{3}/{2 } \cdot \eta^2
+ \hspace{0.05cm},$$
+*Sink SNR and sink-to-noise ratio in frequency modulation $\rm (FM)$&nbsp;using pre-emphasis/de-emphasis:
+:$$ \rho_{\rm DE} = \frac{(f_{\rm N}/f_{\rm G})^3}{3 \cdot (f_{\rm N}/f_{\rm G} - \arctan (f_{\rm N}/f_{\rm G}) }
+ \hspace{0.3cm}\Rightarrow \hspace{0.3cm}
+G_{\rm DE} = 10 \cdot {\rm lg} \hspace{0.15cm}\rho_{\rm DE} -
+\cdot {\rm lg} \hspace{0.15cm}\rho_{\rm FM}\hspace{0.05cm}$$
@@ Line 33: / Line 44: @@
-===Fragebogen===
+''Hints:''
+*This exercise belongs to the chapter&nbsp; [[Modulation_Methods/Influence_of_Noise_on_Systems_with_Angle_Modulation|Influence of Noise on Systems with Angle Modulation]].
+*Particular reference is made to the section&nbsp; [[Modulation_Methods/Influence_of_Noise_on_Systems_with_Angle_Modulation#Pre-emphasis_and_de-emphasis|Pre-emphasis and de-emphasis]].
+*Throughout the task, assume a message signal containing frequencies up to and including &nbsp;$B_{\rm NF}= 9 \ \rm kHz$&nbsp;.
+===Questions===
 <quiz display=simple>
-{Geben Sie eine mögliche Realisierung des Deemphase–Netzwerks  $H_{DE}(f)$  an. Welche der nachfolgenden Aussagen sind richtig?
+{Give a possible realization of the de-emphasis network &nbsp;$H_{\rm DE}(f)$&nbsp;.  Which of the following statements are correct?
 |type="[]"}
-+  $H_{DE}(f)$  ist ein Tiefpass erster Ordnung.
++ $H_{\rm DE}(f)$&nbsp; is a first-order low-pass filter.
--  $H_{DE}(f)$  ist ein Hochpass erster Ordnung.
+- $H_{\rm DE}(f)$&nbsp; is a first-order high-pass filter.
--  $H_{DE}(f)$  ist ein Bandpass.
+- $H_{\rm DE}(f)$&nbsp; is a bandpass.
-+ Zusätzlich muss der Faktor  $α$  korrigiert werden.
++ In addition, the factor &nbsp; $α$ &nbsp; must be corrected.
-{Wie groß ist der Störabstandsgewinn der herkömmlichen FM gegenüber AM, wenn die Nachrichtenfrequenz  $f_N = 9 kHz$ ,  $3 kHz$  bzw. $1 kHz$ beträgt?
+{What is the signal-to-noise ratio advantage &nbsp; $G_{\rm FM}$ &nbsp; of conventional FM over AM at the given message frequencies &nbsp;$ f_{\rm N}$?
 |type="{}"}
-$ f_N = 9 kHz:   G_{FM}$ = { 15.74 3% }  $dB$
+$ f_{\rm N} = \text{9 kHz:}  \hspace{0.2cm} G_{\rm FM} \ = \  ${ 15.74 3% }$ \ \rm dB$
-$ f_N = 3 kHz:   G_{FM}$ = { 25.28 3% }  $dB$
+$ f_{\rm N} = \text{3 kHz:}  \hspace{0.2cm} G_{\rm FM} \ = \  ${ 25.28 3% }$ \ \rm dB$
-$ f_N = 1 kHz:   G_{FM}$ = { 34.82 3% }  $dB$
+$ f_{\rm N} = \text{1 kHz:}  \hspace{0.2cm} G_{\rm FM} \ = \  ${ 34.82 3% }$ \ \rm dB$
-{Wie groß ist  $Δf_{A, min}$  mit  $Δf_{A, max} = 45 kHz$  und  $B_{NF} = 9 kHz$  zu wählen?
+{What &nbsp;$Δf_\text{A, min}$ &nbsp; should we choose when &nbsp; $Δf_\text{A, max} = 45 \ \rm  kHz$ &nbsp; and &nbsp; $B_{\rm NF} = f_\text{N, max}= 9 \ \rm kHz$ &nbsp;?
 |type="{}"}
-$Δf_{A, min}$  = { 14.23 3% } $KHz$
+$Δf_\text{A, min}  \ = \ $ { 14.23 3% } $\ \rm kHz$
-{Welcher zusätzliche Gewinn ist durch Preemphase/Deemphase zu erzielen?
+{What is the additional efficiency gain to be obtained by pre-emphasis/de-emphasis??
 |type="{}"}
-$f_N = 9 kHz:   G_{DE}$ = { 7.1 3% }  $dB$
+$ f_{\rm N} = \text{9 kHz:}  \hspace{0.2cm} G_{\rm DE} \ = \  ${ 7.1 3% }$ \ \rm dB$
-$f_N = 3 kHz:   G_{DE}$ = { 1.9 3% }  $dB$
+$ f_{\rm N} = \text{3 kHz:}  \hspace{0.2cm} G_{\rm DE} \ = \  ${ 1.9 3% }$ \ \rm dB$
-$f_N = 1 kHz:   G_{DE}$ = { 0.28 3% }  $dB$
+$ f_{\rm N} = \text{1 kHz:}  \hspace{0.2cm} G_{\rm DE} \ = \  ${ 0.28 3% }$ \ \rm dB$
@@ Line 67: / Line 86: @@
 </quiz>
-===Musterlösung===
+===Solution===
 {{ML-Kopf}}
-'''1.''' Der Betragsfrequenzgang des Deemphase–Netzwerks ist wie folgt festgelegt:
+'''(1)'''&nbsp;  The <u>first and last answer</u> are correct:
- $|H_{\rm DE} (f)| = \frac{1}{|H_{\rm PE} (f)|}= \frac{1}{\alpha}\cdot \frac{1}{\sqrt{1 + (f/f_{\rm G})^2}} \hspace{0.05cm}.$
+*The magnitude frequency response of the de-emphasis network is defined as follows:
-Der Frequenzgang eines einfachen RC–Tiefpasses – auch bekannt als Tiefpass erster Ordnung – lautet:
+: $|H_{\rm DE} (f)| = \frac{1}{|H_{\rm PE} (f)|}= \frac{1}{\alpha}\cdot \frac{1}{\sqrt{1 + (f/f_{\rm G})^2}} \hspace{0.05cm}.$
-$$ H_{\rm DE} (f) = \frac{1}{{1 + {\rm j}\cdot f/f_{\rm G}}} \hspace{0.3cm}\Rightarrow \hspace{0.3cm} |H_{\rm DE} (f)| = \frac{1}{\sqrt{1 + (f/f_{\rm G})^2}}\hspace{0.05cm}.$$
+*The frequency response of a simple RC low-pass filter - also known as a first-order low-pass filter - is:
-Richtig sind also der erste und der letzte Lösungsvorschlag.
+:$$ H_{\rm RC-TP} (f) = \frac{1}{{1 + {\rm j}\cdot f/f_{\rm G}}} \hspace{0.3cm}\Rightarrow \hspace{0.3cm} |H_{\rm RC-TP} (f)| = \frac{1}{\sqrt{1 + (f/f_{\rm G})^2}}\hspace{0.05cm}.$$
+'''(2)'''&nbsp;The frequency modulation is designed for the maximum frequency&nbsp;  $B_{\rm NF} = f_\text{N, max}= 9 \ \rm kHz$ &nbsp;.&nbsp; Then the (maximum) frequency deviation should be&nbsp;  $Δf_{\rm A} = 45\ \rm  kHz$ &nbsp;.
+*From this it follows for the modulation index:
+:$$ \eta = \frac{\Delta f_{\rm A}}{f_{\rm N} } = 5 \hspace{0.3cm}\Rightarrow \hspace{0.3cm}
+G_{\rm FM} (f_{\rm N} = 9\,{\rm kHz}) = 10 \cdot {\rm lg}
+\hspace{0.15cm}(1.5 \cdot 5^2) \hspace{0.15cm}\underline {\approx 15.74\,{\rm dB}}
+ \hspace{0.05cm}.$$
+*Using the message frequency&nbsp;  $f_{\rm N} = 3 \ \rm kHz$ &nbsp;  results in a modulation index larger by a factor of &nbsp;  $3$ &nbsp; and thus a signal-to-noise ratio larger by a factor of&nbsp;  $10 · \lg \ 9 = 9.54 \ \rm  dB$ &nbsp;:
+:$$G_{\rm FM} (f_{\rm N} = 3\,{\rm kHz}) = 10 \cdot {\rm lg}
+\hspace{0.15cm}(1.5 \cdot 15^2) \hspace{0.15cm}\underline {\approx 25.28\,{\rm dB}}
+ \hspace{0.05cm}.$$
+*Another gain results from the transition from &nbsp;  $3\ \rm  kHz$ &nbsp; to&nbsp;  $1\ \rm  kHz$ :
+:$$G_{\rm FM} (f_{\rm N} = 1\,{\rm kHz}) =  25.28\,{\rm dB} + 9.54\,{\rm
+ dB}\hspace{0.15cm}\underline {= 34.82\,{\rm dB}}
+ \hspace{0.05cm}.$$
+'''(3)'''&nbsp;   The maximum frequency deviation is obtained for  $f_{\rm N} = B_{\rm NF}$ .
+*It follows, with  $f_{\rm G}  = 3 \ \rm    kHz$  and  $B_{\rm NF} = 9 \ \rm  kHz$ :
+: $\Delta f_{\rm A} (B_{\rm NF}) = \Delta f_{\rm A, \hspace{0.08cm}min} \cdot \sqrt{{1 + \left(\frac{B_{\rm NF}}{f_{\rm G}}\right)^2}} = \sqrt {10} \cdot \Delta f_{\rm A, \hspace{0.08cm}min}= \Delta f_{\rm A, \hspace{0.08cm}max} = 45\,{\rm kHz}$
+: $\Rightarrow \hspace{0.3cm} \Delta f_{\rm A, \hspace{0.08cm}min} = \frac{45\,{\rm kHz}}{\sqrt {10}}\hspace{0.15cm}\underline {\approx 14.23\,{\rm kHz}}\hspace{0.05cm}.$
-'''2.'''  Die FM ist auf die maximale Signalfrequenz  $9 kHz$  ausgelegt, mit der der Frequenzhub  $Δf_A = 45 kHz$  betragen soll. Daraus folgt für den Modulationsindex:
- $\eta = \frac{\Delta f_{\rm A}}{f_{\rm N} } = 5 \hspace{0.3cm}\Rightarrow \hspace{0.3cm} G_{ FM} (f_{\rm N} = 9\,{\rm kHz}) = 10 \cdot {\rm lg} \hspace{0.15cm}(1.5 \cdot 5^2) \hspace{0.15cm}\underline {\approx 15.74\,{\rm dB}} \hspace{0.05cm}.$
-Mit der Nachrichtenfrequenz  $f_N = 3 kHz$  ergibt sich ein um den Faktor 3 größerer Modulationsindex und damit ein um den Faktor  $10 · lg 9 = 9.54 dB$  größerer Störabstand:
- $G_{ FM} (f_{\rm N} = 3\,{\rm kHz}) = 10 \cdot {\rm lg} \hspace{0.15cm}(1.5 \cdot 15^2) \hspace{0.15cm}\underline {\approx 25.28\,{\rm dB}} \hspace{0.05cm}.$
-Ein weiterer Zugewinn ergibt sich durch den Übergang von  $3 kHz$  auf  $1 kHz$ :
- $G_{ FM} (f_{\rm N} = 1\,{\rm kHz}) = 25.28\,{\rm dB} + 9.54\,{\rm dB}\hspace{0.15cm}\underline {= 34.82\,{\rm dB}} \hspace{0.05cm}.$
+'''(4)'''&nbsp;  Using the given formula, the following "gains due to pre-emphasis/de-emphasis" are obtained:
+:$$G_{\rm DE} (f_{\rm N} = 9\,{\rm kHz}) = 10 \cdot {\rm
+lg}\hspace{0.15cm} \frac{(f_{\rm N}/f_{\rm G})^3}{3 \cdot (f_{\rm
+N}/f_{\rm G} - \arctan (f_{\rm N}/f_{\rm G}) }= 10 \cdot {\rm lg}\hspace{0.15cm} \frac{3^3}{3 \cdot (3 -
+.249) }\hspace{0.15cm}\underline {\approx 7.1\,{\rm dB}}\hspace{0.05cm},$$
+: $G_{\rm DE} (f_{\rm N} = 3\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{1^3}{3 \cdot (1 - \pi/4) }\hspace{0.15cm}\underline {\approx 1.9\,{\rm dB}}\hspace{0.05cm},$
+: $G_{\rm DE} (f_{\rm N} = 1\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{(1/3)^3}{3 \cdot (1/3 - 0.322) }\hspace{0.15cm}\underline {\approx 0.28\,{\rm dB}}\hspace{0.05cm}.$
-'''3.''' Der maximale Frequenzhub ergibt sich für  $f_N = B_{NF}$ . Daraus folgt mit  $f_G = 3 kHz$  und  $B_{NF} = 9 kHz$ :
- $\Delta f_{\rm A} (B_{\rm NF}) = \Delta f_{\rm A, \hspace{0.08cm}min} \cdot \sqrt{{1 + \left(\frac{B_{\rm NF}}{f_{\rm G}}\right)^2}} = \sqrt {10} \cdot \Delta f_{\rm A, \hspace{0.08cm}min}= \Delta f_{\rm A, \hspace{0.08cm}max} = 45\,{\rm kHz}$
- $\Rightarrow \hspace{0.3cm} \Delta f_{\rm A, \hspace{0.08cm}min} = \frac{45\,{\rm kHz}}{\sqrt {10}}\hspace{0.15cm}\underline {\approx 14.23\,{\rm kHz}}\hspace{0.05cm}.$
-'''4.'''  Mit der angegebenen Formel erhält man folgende Gewinne:
- $G_{ DE} (f_{\rm N} = 9\,{\rm kHz})  =  10 \cdot {\rm lg}\hspace{0.15cm} \frac{(f_{\rm N}/f_{\rm G})^3}{3 \cdot (f_{\rm N}/f_{\rm G} - \arctan (f_{\rm N}/f_{\rm G}) }=$
- $=  10 \cdot {\rm lg}\hspace{0.15cm} \frac{3^3}{3 \cdot (3 - 1.249) }\hspace{0.15cm}\underline {\approx 7.1\,{\rm dB}}\hspace{0.05cm},$
- $G_{ DE} (f_{\rm N} = 3\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{1^3}{3 \cdot (1 - \pi/4) }\hspace{0.15cm}\underline {\approx 1.9\,{\rm dB}}\hspace{0.05cm},$
- $G_{ DE} (f_{\rm N} = 1\,{\rm kHz}) = 10 \cdot {\rm lg}\hspace{0.15cm} \frac{(1/3)^3}{3 \cdot (1/3 - 0.322) }\hspace{0.15cm}\underline {\approx 0.28\,{\rm dB}}\hspace{0.05cm}.$
-'''5.'''
-'''6.'''
-'''7.'''
 {{ML-Fuß}}
-[[Category:Aufgaben zu Modulationsverfahren|^3.3 Rauscheinfluss bei Winkelmodulation^]]
+[[Category:Modulation Methods: Exercises|^3.3 Noise Influence with PM and FM^]]