Difference between revisions of "Aufgaben:Exercise 2.7: AMI Code"

Latest revision as of 17:11, 25 May 2022

Block diagram of a
pseudo-ternary encoder

The diagram shows the block diagram for AMI coding, assuming binary bipolar amplitude coefficients $q_{\nu} ∈ \{–1, +1\}$ at the input. This encoding is done in two stages:

In the first part of the block diagram, a binary pre-encoded symbol $b_{\nu}$ is generated at each clock from the modulo-2 addition of $q_{\nu}$ and $b_{\nu -1}$. It holds $b_{\nu} ∈ \{–1, +1\}.$
Then, the current amplitude coefficient of the ternary transmitted signal $s(t)$ is determined by a conventional subtraction. Thereby holds:

$$a_\nu = {1}/{2} \cdot \big [ b_\nu - b_{\nu-1} \big ] \hspace{0.05cm}.$$

Due to AMI coding, it is ensured that the AMI encoder signal does not contain these two "long sequences"
$ \langle c_\nu \rangle = \langle \text{...}, +1, +1, +1, +1, +1, \text{...}\rangle$ resp.

$ \langle c_\nu \rangle = \langle \text{...}, -1, -1, -1, -1, -1, \text{...}\rangle$.

Modified AMI codes have also been developed to avoid long "zero sequences":

In the HDB3 code, four consecutive zeros each are marked by a specific violation of the AMI coding rule.

In the B6ZS code, six consecutive zeros are marked by a targeted violation of the AMI coding rule.

The power-spectral density ${\it \Phi}_{a}(f)$ of the amplitude coefficients is to be obtained from the discrete ACF values $\varphi_{a}(\lambda) = {\E}\big[a_{\nu} \cdot a_{\nu + \lambda}\big]$. The Fourier transform in discrete representation is:

$${\it \Phi}_a(f) = \sum_{\lambda = -\infty}^{+\infty}\varphi_a(\lambda)\cdot {\rm e}^{- {\rm j}\hspace{0.05cm} 2 \pi f \hspace{0.02cm} \lambda T} \hspace{0.05cm}.$$

Notes:

The exercise belongs to the chapter "Symbolwise Coding with Pseudo-Ternary Codes".

You can check the results with the (German language) SWF applet "Signals, ACF and PSD of pseudo-ternary codes".

Questions

$b_{1} \hspace{0.26cm} = \ $

$b_{11} \ = \ $

$b_{12} \ = \ $

$a_{1} \hspace{0.28cm} = \ $

$a_{11} \ = \ $

$a_{12} \ = \ $

	The HDB3 code is different from the AMI code.
	The B6ZS code is different from the AMI code.

${\Pr}(a_{\nu} = + 1) \ = \ $

${\Pr}(a_{\nu} = 0) \hspace{0.45cm} = \ $

${\Pr}(a_{\nu} = - 1) \ = \ $

$\E\big[a_{\nu}\big] \ = \ $

$\E\big[a_{\nu}^{2}\big] \ = \ $

$\varphi_{a}(\lambda = 0) \ = \ $

$\varphi_{a}(\lambda = 1) \ = \ $

$\varphi_{a}(\lambda = 2) \ = \ $

${\it \Phi}_{a}(f = 0) \ = \ $

${\it \Phi}_{a}(f = 1/(2T)) \ = \ $

Solution

(1) The modulo-2 addition can also be taken as an "antivalence".

It is $b_{\nu} = +1$ if $q_{\nu}$ and $b_{\nu – 1}$ differ, otherwise set $b_{\nu} = -1$.
With the initial value $b_{0} = -1$ we obtain:

$$b_1\hspace{0.15cm}\underline { = +1}, \hspace{0.2cm} b_2 = +1, \hspace{0.2cm}b_3 = -1, \hspace{0.2cm}b_4 = +1, \hspace{0.2cm}b_5 = +1, \hspace{0.2cm}b_6 = -1\hspace{0.05cm},$$

$$b_7 = +1, \hspace{0.2cm} b_8 = +1, \hspace{0.2cm}b_9 = +1, \hspace{0.2cm}b_{10} = +1, \hspace{0.2cm}b_{11} \hspace{0.15cm}\underline {= +1}, \hspace{0.2cm}b_{12} \hspace{0.15cm}\underline {= -1}\hspace{0.05cm}.$$

(2) AMI coding gives the following amplitude coefficients:

$$a_1\hspace{0.15cm}\underline { = +1}, \hspace{0.2cm} a_2 = 0, \hspace{0.2cm}a_3 = -1, \hspace{0.2cm}a_4 = +1, \hspace{0.2cm}a_5 = 0, \hspace{0.2cm}a_6 = -1\hspace{0.05cm},$$

$$a_7 = +1, \hspace{0.2cm} a_8 = 0, \hspace{0.2cm}a_9 = 0, \hspace{0.2cm}a_{10} = 0, \hspace{0.2cm}a_{11}\hspace{0.15cm}\underline { = 0}, \hspace{0.2cm}a_{12} \hspace{0.15cm}\underline {= -1}\hspace{0.05cm}.$$

This result is obtained by the equation $a_{\nu} = (b_{\nu} - b_{\nu –1})/2$ or by direct application of the AMI coding rule:

A source symbol $q_{\nu} = -1$ always leads to $a_{\nu} = 0$.
A source symbols $q_{\nu} = +1$ lead alternately to $a_{\nu} = +1$ and $a_{\nu} = -1$.

(3) Solution 1 is correct:

The AMI code yields four consecutive zeros in the range between $\nu = 8$ and $\nu = 11$.
In the HDB3 code, these four symbols would be marked with "$+ 0 0 +$". Thus, the AMI rule is deliberately violated for identification purposes.
In contrast, the B6ZS code substitutes only zero sequences over six symbols.

(4) Assuming equally probable binary values $±1$, we obtain ${\Pr}(a_{\nu} = 0) = {\Pr}(q_{\nu} = -1)\hspace{0.15cm}\underline{ = 1/2}$ and for symmetry reasons

${\Pr}(a_{\nu} = +1) = {\Pr}(a_{\nu} = -1) \hspace{0.15cm}\underline{ = 1/4}.$

(5) Using the probabilities calculated in (4), we obtain:

$${\rm E}\big[a_\nu \big] = \ {1}/{4} \cdot (+1) +{1}/{2} \cdot 0+ {1}/{4} \cdot (-1)\hspace{0.15cm}\underline {= 0}\hspace{0.05cm},$$

$$ {\rm E}\big[a_\nu^2 \big] = \ {1}/{4} \cdot (+1)^2 +{1}/{2} \cdot 0^2 + {1}/{4} \cdot (-1)^2 \hspace{0.15cm}\underline {= 0.5} \hspace{0.05cm}.$$

(6) The ACF value at $\lambda = 0$ is equal to the second moment of the amplitude coefficients:

$$ \varphi_a(\lambda = 0) = {\rm E}[a_\nu^2] \hspace{0.15cm}\underline {= 0.5} \hspace{0.05cm}.$$

Since the order of the AMI code is $N = 1$, for $\lambda > 1$: $\varphi_a(\lambda > 1) = {\rm E}[a_\nu^2] \hspace{0.15cm}\underline {= 0} \hspace{0.05cm}.$

The ACF value $\varphi_{a}(\lambda = 1)$ must be determined by averaging: $\varphi_a(\lambda = 1) = {\rm E}[a_\nu \cdot a_{\nu+1} \cdot {\rm Pr}(a_\nu \cap a_{\nu+1})] \hspace{0.05cm}.$

Of the nine possible combinations for $a_{\nu} \cdot a_{\nu +1}$, only four yield a non-zero value. In the other cases, either $a_{\nu} = 0$ or $a_{\nu +1} = 0$.

However, since in AMI code also

$${\rm Pr}[(a_\nu = +1) \cap (a_{\nu+1}= +1)] = \ 0 \hspace{0.05cm},$$

$$ {\rm Pr}[(a_\nu = -1) \cap (a_{\nu+1}= -1)] = \ 0$$

is true, one obtains as the final result (since the ACF is always an even function):

$${\rm Pr}[(a_\nu = +1) \cap (a_{\nu+1}= -1)] = \ {\rm Pr}(a_\nu = +1)\cdot {\rm Pr}(a_{\nu+1} = -1 | a_\nu = +1) = {1}/{4}\cdot{1}/{2} ={1}/{8} \hspace{0.05cm},$$

$${\rm Pr}[(a_\nu = -1) \cap (a_{\nu+1}= +1)] = \ {\rm Pr}(a_\nu = -1)\cdot {\rm Pr}(a_{\nu+1} = +1 | a_\nu = -1) = {1}/{4}\cdot {1}/{2} = {1}/{8}$$

Auto-correlation functions of the AMI code

$$\Rightarrow \hspace{0.3cm} \varphi_{a}(\lambda = +1) = \varphi_{a}(\lambda = -1) = -0.25.$$

This takes into account that $a_{\nu} = +1$ is followed by $a_{\nu +1} = +1$ and $a_{\nu +1} = -1$ with equal probability. Thus, the result is:

$$\varphi_a(\lambda = 0)\hspace{0.15cm}\underline {= 0.5} \hspace{0.05cm}, $$

$$\varphi_a(\lambda = 1)\hspace{0.15cm}\underline {= -0.25} \hspace{0.05cm},$$

$$\varphi_a(\lambda = 2)\hspace{0.15cm}\underline {= 0}.$$

The graph shows

the discrete ACF $\varphi_{a}(\lambda)$ of the amplitude coefficients,
the ACF $\varphi_{s}(\tau)$ of the transmitted signal under the condition of NRZ rectangular pulses and AMI coding.

Here, the ACF $\varphi_{s}(\tau)$ (drawn in blue) is the result of the (discrete) convolution between the discrete ACF $\varphi_{a}(\lambda)$ (drawn in red) and the triangular energy ACF of the basic transmission pulse.

(7) From the given equation, taking into account the discrete ACF values calculated in (6),

$$\varphi_{a}(\lambda = 0) = 1/2,$$

$$\varphi_{a}(|\lambda| = 1) = -1/4,$$

$$\varphi_{a}(|\lambda| > 1) = 0,$$

we obtain the following result:

$${\it \Phi}_a(f) = \ \sum_{\lambda = -\infty}^{+\infty}\varphi_a(\lambda)\cdot {\rm e}^{- {\rm j}\hspace{0.05cm} 2 \pi f \hspace{0.02cm} \lambda T} = \varphi_a(\lambda = 0) + 2 \cdot \varphi_a(\lambda = 1 )\cdot\cos ( 2 \pi f \hspace{0.02cm} \lambda T) = \ {1}/{2} \cdot \left [ 1 - \cos ( 2 \pi f \hspace{0.02cm} T)\right ] = \sin^2 ( \pi f \hspace{0.02cm} T) \hspace{0.05cm}.$$

In particular holds:

$${\it \Phi}_a(f = 0) \hspace{0.15cm}\underline {= 0},$$

$${\it \Phi}_a(f = {1}/({2T})) = \sin^2 ({\pi}/{2})\hspace{0.15cm}\underline {= 1} \hspace{0.05cm}.$$

@@ Line 1: / Line 1: @@
-{{quiz-Header|Buchseite=Digitalsignalübertragung/Symbolweise Codierung mit Pseudoternärcodes
+{{quiz-Header|Buchseite=Digital_Signal_Transmission/Symbolwise_Coding_with_Pseudo-Ternary_Codes
 }}
-[[File:P_ID1351__Dig_A_2_7.png|right|frame|Blockschaltbild eines Pseudoternärcoders]]
+[[File:EN_Dig_A_2_7.png|right|frame|Block diagram of a <br>pseudo-ternary encoder]]
-Die Grafik zeigt das Blockschaltbild zur AMI–Codierung, wobei von den binären bipolaren Amplitudenkoeffizienten &nbsp;$q_{\nu} ∈ \{–1, +1\}$&nbsp; am Eingang ausgegangen wird. Diese Umcodierung erfolgt zweistufig:
+The diagram shows the block diagram for AMI coding,&nbsp; assuming binary bipolar amplitude coefficients &nbsp;$q_{\nu} ∈ \{–1, +1\}$&nbsp; at the input.&nbsp; This encoding is done in two stages:
-*Im ersten Teil des Blockschaltbildes wird bei jedem Taktschritt ein binär–vorcodiertes Symbol &nbsp;$b_{\nu}$&nbsp; aus der Modulo–2–Addition von &nbsp;$q_{\nu}$&nbsp; und &nbsp;$b_{\nu -1}$&nbsp; erzeugt. Es gilt &nbsp;$b_{\nu} ∈ \{–1, +1\}.$
+#In the first part of the block diagram,&nbsp; a binary pre-encoded symbol &nbsp;$b_{\nu}$&nbsp; is generated at each clock from the modulo-2 addition of &nbsp;$q_{\nu}$&nbsp; and &nbsp;$b_{\nu -1}$.&nbsp; It holds &nbsp;$b_{\nu} ∈ \{–1, +1\}.$<br>
-*Danach wird durch eine herkömmliche Subtraktion der aktuelle Amplitudenkoeffizient des ternären Sendesignals &nbsp;$s(t)$&nbsp; bestimmt. Dabei gilt:
+#Then,&nbsp; the current amplitude coefficient of the ternary transmitted signal &nbsp;$s(t)$&nbsp; is determined by a conventional subtraction.&nbsp; Thereby holds:
-:$$a_\nu = {1}/{2} \cdot \left [ b_\nu - b_{\nu-1} \right ] \hspace{0.05cm}.$$
+::$$a_\nu = {1}/{2} \cdot \big [ b_\nu - b_{\nu-1} \big ] \hspace{0.05cm}.$$
-Aufgrund der AMI–Codierung wird sichergestellt, dass keine langen „$+1$”– bzw. „$–1$”–Sequenzen entstehen. Um auch lange Nullfolgen zu vermeiden, wurden auch modifizierte AMI–Codes entwickelt:
+Due to AMI coding,&nbsp; it is ensured that the AMI encoder signal does not contain these two "long sequences"<br>
-*Beim HDB3–Code werden je vier aufeinanderfolgende Nullen durch eine gezielte Verletzung der AMI–Codierregel markiert.
+&nbsp; &nbsp;  &nbsp; &nbsp; $ \langle c_\nu \rangle =  \langle \text{...}, +1, +1, +1, +1, +1, \text{...}\rangle$ &nbsp; resp.
-*Beim B6ZS–Code werden sechs aufeinanderfolgende Nullen durch eine gezielte Verletzung der AMI–Codierregel markiert.
+&nbsp; &nbsp;  &nbsp; &nbsp; $ \langle c_\nu \rangle =  \langle \text{...}, -1, -1, -1, -1, -1, \text{...}\rangle$.
+Modified AMI codes have also been developed to avoid long&nbsp;  "zero sequences":
+*In the HDB3 code,&nbsp; four consecutive zeros each are marked by a specific violation of the AMI coding rule.
-Das Leistungsdichtespektrum &nbsp;${\it \Phi}_{a}(f)$&nbsp; der Amplitudenkoeffizienten soll aus den diskreten AKF–Werten &nbsp;$\varphi_{a}(\lambda) = {\E}\big[a_{\nu} \cdot a_{\nu + \lambda}\big]$&nbsp; ermittelt werden. Die Fouriertransformation lautet in diskreter Darstellung:
+*In the B6ZS code,&nbsp; six consecutive zeros are marked by a targeted violation of the AMI coding rule.
-:$${\it \Phi}_a(f) = \sum_{\lambda = -\infty}^{+\infty}\varphi_a(\lambda)\cdot {\rm e}^{- {\rm j}\hspace{0.05cm} 2 \pi f \hspace{0.02cm} \lambda T} \hspace{0.05cm}.$$
+The power-spectral density &nbsp;${\it \Phi}_{a}(f)$&nbsp; of the amplitude coefficients is to be obtained from the discrete ACF values &nbsp;$\varphi_{a}(\lambda) = {\E}\big[a_{\nu} \cdot a_{\nu + \lambda}\big]$.&nbsp; The Fourier transform in discrete representation is:
+:$${\it \Phi}_a(f) = \sum_{\lambda = -\infty}^{+\infty}\varphi_a(\lambda)\cdot {\rm e}^{- {\rm j}\hspace{0.05cm} 2 \pi f \hspace{0.02cm} \lambda T} \hspace{0.05cm}.$$
-''Hinweise:''
+Notes:
-*Die Aufgabe gehört zum  Kapitel&nbsp;  [[Digital_Signal_Transmission/Symbolweise_Codierung_mit_Pseudoternärcodes|Symbolweise Codierung mit Pseudoternärcodes]].
+*The exercise belongs to the chapter&nbsp;  [[Digital_Signal_Transmission/Symbolwise_Coding_with_Pseudo-Ternary_Codes|"Symbolwise Coding with Pseudo-Ternary Codes"]].
-*Sie können die Ergebnisse mit dem interaktiven Applet &nbsp;[[Applets:Pseudoternaercodierung|Signale, AKF und LDS der Pseudoternärcodes]]&nbsp; überprüfen.
+*You can check the results with the&nbsp; (German language)&nbsp; SWF applet &nbsp;[[Applets:Pseudoternaercodierung|"Signals, ACF and PSD of pseudo-ternary codes"]].&nbsp;
-===Fragebogen===
+===Questions===
 <quiz display=simple>
-{Am Eingang liegt  &nbsp;$\langle q_{\nu} \rangle = \langle +1, –1, +1, +1, –1, +1, +1, –1, –1, –1, –1, +1 \rangle$&nbsp; an. Ermitteln Sie die binär–vorcodierte Folge &nbsp;$\langle b_{\nu} \rangle$&nbsp; mit der Vorbelegung $b_{0} = \hspace{0.05cm}–1$. <br>Geben Sie zur Kontrolle folgende Werte ein:
+{At the input, &nbsp;$\langle q_{\nu} \rangle = \langle +1, –1, +1, +1, –1, +1, +1, –1, –1, –1, –1, +1 \rangle$&nbsp; is applied. <br>Determine the binary pre-encoded sequence &nbsp;$\langle b_{\nu} \rangle$&nbsp; with the default $b_{0} = \hspace{0.05cm}-1$.&nbsp; Enter the following values as a check:
 |type="{}"}
 $b_{1} \hspace{0.26cm} = \ $ { 1 3% }
@@ Line 37: / Line 41: @@
 $b_{12} \ = \ $ { -1.03--0.97 }
-{Ermitteln Sie weiterhin die Folge &nbsp;$\langle a_{\nu} \rangle$&nbsp; der Amplitudenkoeffizienten des AMI–codierten Sendesignals &nbsp;$s(t)$. <br>Geben Sie zur Ergebnisüberprüfung folgende Werte ein:
+{Furthermore, determine the sequence &nbsp;$\langle a_{\nu} \rangle$&nbsp; of the amplitude coefficients of the AMI-encoded transmitted signal &nbsp;$s(t)$. <br>Enter the following values to check the results:
 |type="{}"}
 $a_{1} \hspace{0.28cm} = \ $ { 1 3% }
@@ Line 44: / Line 48: @@
-{Würde sich ein HDB3– bzw. ein B6ZS–Signal im betrachteten Bereich &nbsp;$(\text{also über }12T)$&nbsp; vom AMI–Code unterscheiden?
+{Would an HDB3 or a B6ZS signal differ from the AMI code in the range under consideration &nbsp;$(\text{i.e. above }12T)$?&nbsp;
 |type="[]"}
-+ Der HDB3–Code unterscheidet sich vom AMI–Code.
++ The HDB3 code is different from the AMI code.
-- Der B6ZS–Code unterscheidet sich vom AMI–Code.
+- The B6ZS code is different from the AMI code.
-{Wie groß sind die drei Auftrittswahrscheinlichkeiten beim AMI–Code?
+{What are the three probabilities of occurrence in the AMI code?
 |type="{}"}
 ${\Pr}(a_{\nu} = + 1) \ = \ $ { 0.25 3% }
@@ Line 55: / Line 59: @@
 ${\Pr}(a_{\nu} = - 1) \ = \ $ { 0.25 3% }
-{Berechnen Sie die beiden ersten Mittelwerte der Amplitudenkoeffizienten.
+{Calculate the first two mean values of the amplitude coefficients.
 |type="{}"}
 $\E\big[a_{\nu}\big] \ = \ $ { 0. }
 $\E\big[a_{\nu}^{2}\big] \ = \ $ { 0.5 3% }
-{Berechnen Sie die Autokorrelationsfunktion &nbsp;$\varphi_{a}(\lambda)$, insbesondere die folgenden AKF–Werte:
+{Calculate the auto-correlation function &nbsp;$\varphi_{a}(\lambda)$,&nbsp; in particular the following ACF values:
 |type="{}"}
 $\varphi_{a}(\lambda = 0) \ = \ $ { 0.5 3% }
@@ Line 66: / Line 70: @@
 $\varphi_{a}(\lambda = 2) \ = \ $ { 0. }
-{Wie lautet das  Leistungsdichtespektrum &nbsp;${\it \Phi}_{a}(f)$? Welche Werte ergeben für &nbsp;$f = 0$&nbsp; und &nbsp;$f = 1/(2T)$?
+{What is the power-spectral density &nbsp;${\it \Phi}_{a}(f)$?&nbsp; What are the values for &nbsp;$f = 0$&nbsp; and &nbsp;$f = 1/(2T)$?
 |type="{}"}
 ${\it \Phi}_{a}(f = 0) \ = \ $ { 0. }
@@ Line 74: / Line 78: @@
 </quiz>
-===Musterlösung===
+===Solution===
 {{ML-Kopf}}
-'''(1)'''&nbsp; Die Modulo–2–Addition kann auch als Antivalenz aufgefasst werden.
+'''(1)'''&nbsp; The modulo-2 addition can also be taken as an&nbsp; "antivalence".
-*Es gilt $b_{\nu} = +1$, falls sich $q_{\nu}$ und $b_{\nu – 1}$ unterscheiden, andernfalls ist $b_{\nu} = -1$ zu setzen.
+*It is&nbsp; $b_{\nu} = +1$&nbsp; if&nbsp; $q_{\nu}$&nbsp; and&nbsp; $b_{\nu – 1}$&nbsp; differ,&nbsp; otherwise set&nbsp; $b_{\nu} = -1$.
-*Mit dem Startwert $b_{0} = -1$ erhält man:
+*With the initial value&nbsp; $b_{0} = -1$&nbsp; we obtain:
 :$$b_1\hspace{0.15cm}\underline { = +1}, \hspace{0.2cm} b_2 = +1, \hspace{0.2cm}b_3 = -1, \hspace{0.2cm}b_4 = +1, \hspace{0.2cm}b_5 = +1, \hspace{0.2cm}b_6 = -1\hspace{0.05cm},$$
 :$$b_7 = +1, \hspace{0.2cm} b_8 = +1, \hspace{0.2cm}b_9 = +1, \hspace{0.2cm}b_{10} = +1, \hspace{0.2cm}b_{11} \hspace{0.15cm}\underline {= +1}, \hspace{0.2cm}b_{12} \hspace{0.15cm}\underline {= -1}\hspace{0.05cm}.$$
-'''(2)'''&nbsp; Die AMI–Codierung liefert die folgenden Amplitudenkoeffizienten:
+'''(2)'''&nbsp; AMI coding gives the following amplitude coefficients:
 :$$a_1\hspace{0.15cm}\underline { = +1}, \hspace{0.2cm} a_2 = 0, \hspace{0.2cm}a_3 = -1, \hspace{0.2cm}a_4 = +1, \hspace{0.2cm}a_5 = 0, \hspace{0.2cm}a_6 = -1\hspace{0.05cm},$$
 :$$a_7 = +1, \hspace{0.2cm} a_8 = 0, \hspace{0.2cm}a_9 = 0, \hspace{0.2cm}a_{10} = 0, \hspace{0.2cm}a_{11}\hspace{0.15cm}\underline { = 0}, \hspace{0.2cm}a_{12} \hspace{0.15cm}\underline {= -1}\hspace{0.05cm}.$$
-Zu diesem Ergebnis kommt man  über die Gleichung $a_{\nu} = (b_{\nu} - b_{\nu –1})/2$ oder durch direkte Anwendung der AMI–Codierregel:
+This result is obtained by the equation&nbsp; $a_{\nu} = (b_{\nu} - b_{\nu –1})/2$&nbsp; or by direct application of the AMI coding rule:
-*Ein Quellensymbol $q_{\nu} = -1$ führt stets zu $a_{\nu} = 0$.
+*A source symbol&nbsp; $q_{\nu} = -1$&nbsp; always leads to&nbsp; $a_{\nu} = 0$.
-*Die Quellensymbole $q_{\nu} = +1$ führen alternierend zu $a_{\nu} = +1$ und $a_{\nu} = -1$.
+*A source symbols&nbsp; $q_{\nu} = +1$&nbsp; lead alternately to&nbsp; $a_{\nu} = +1$&nbsp; and&nbsp; $a_{\nu} = -1$.
-'''(3)'''&nbsp; Richtig ist der  <u>Lösungsvorschlag 1</u>:
+'''(3)'''&nbsp; <u>Solution 1</u>&nbsp; is correct:
-*Der AMI–Code liefert im Bereich zwischen $\nu = 8$ und $\nu = 11$ vier aufeinanderfolgende Nullen.
+*The AMI code yields four consecutive zeros in the range between&nbsp; $\nu = 8$&nbsp; and&nbsp; $\nu = 11$.
-*Beim HDB3–Code würden diese vier Symbole mit „$+ 0 0 +$” markiert. Dadurch wird zur Kenntlichmachung die AMI–Regel bewusst verletzt.
+*In the HDB3 code,&nbsp; these four symbols would be marked with&nbsp; "$+ 0 0 +$".&nbsp; Thus,&nbsp; the AMI rule is deliberately violated for identification purposes.
-*Dagegen ersetzt der B6ZS–Code nur Nullfolgen über sechs Symbole.
+*In contrast,&nbsp; the B6ZS code substitutes only zero sequences over six symbols.
-'''(4)'''&nbsp; Unter der Annahme gleichwahrscheinlicher Binärwerte $±1$ erhält man ${\Pr}(a_{\nu} = 0) = {\Pr}(q_{\nu} = -1)\hspace{0.15cm}\underline{ = 1/2}$ und aus Symmetriegründen
+'''(4)'''&nbsp; Assuming equally probable binary values&nbsp; $±1$,&nbsp; we obtain&nbsp; ${\Pr}(a_{\nu} = 0) = {\Pr}(q_{\nu} = -1)\hspace{0.15cm}\underline{ = 1/2}$&nbsp; and for symmetry reasons
 : ${\Pr}(a_{\nu} = +1) = {\Pr}(a_{\nu} = -1) \hspace{0.15cm}\underline{ = 1/4}.$
-'''(5)'''&nbsp; Mit den unter '''(4)''' berechneten Wahrscheinlichkeiten erhält man:
+'''(5)'''&nbsp; Using the probabilities calculated in&nbsp; '''(4)''',&nbsp; we obtain:
 :$${\rm E}\big[a_\nu \big] = \ {1}/{4} \cdot (+1) +{1}/{2} \cdot 0+ {1}/{4} \cdot (-1)\hspace{0.15cm}\underline {= 0}\hspace{0.05cm},$$
 :$$ {\rm E}\big[a_\nu^2 \big] = \ {1}/{4} \cdot (+1)^2 +{1}/{2} \cdot 0^2 + {1}/{4} \cdot (-1)^2 \hspace{0.15cm}\underline {= 0.5} \hspace{0.05cm}.$$
-'''(6)'''&nbsp; Der AKF–Wert bei $\lambda = 0$ ist gleich dem quadratischen Mittelwert der Amplitudenkoeffizienten:
+'''(6)'''&nbsp; The ACF value at $\lambda = 0$&nbsp; is equal to the second moment of the amplitude coefficients:
 :$$ \varphi_a(\lambda = 0) = {\rm E}[a_\nu^2] \hspace{0.15cm}\underline {= 0.5} \hspace{0.05cm}.$$
-*Da die Ordnung des AMI–Codes $N = 1$ ist, gilt für $\lambda > 1$: &nbsp; $\varphi_a(\lambda > 1) = {\rm E}[a_\nu^2] \hspace{0.15cm}\underline {= 0} \hspace{0.05cm}.$
+*Since the order of the AMI code is&nbsp; $N = 1$, &nbsp; for $\lambda > 1$: &nbsp; $\varphi_a(\lambda > 1) = {\rm E}[a_\nu^2] \hspace{0.15cm}\underline {= 0} \hspace{0.05cm}.$
-*Der AKF–Wert $\varphi_{a}(\lambda = 1)$ muss durch Mittelung bestimmt werden:  &nbsp; $\varphi_a(\lambda = 1) = {\rm E}[a_\nu \cdot a_{\nu+1} \cdot {\rm Pr}(a_\nu \cap a_{\nu+1})] \hspace{0.05cm}.$
+*The ACF value&nbsp; $\varphi_{a}(\lambda = 1)$&nbsp; must be determined by averaging:  &nbsp; $\varphi_a(\lambda = 1) = {\rm E}[a_\nu \cdot a_{\nu+1} \cdot {\rm Pr}(a_\nu \cap a_{\nu+1})] \hspace{0.05cm}.$
-*Von den neun Kombinationsmöglichkeiten für $a_{\nu} \cdot a_{\nu +1}$ liefern nur vier einen von Null verschiedenen Wert. In den anderen Fällen ist entweder $a_{\nu} = 0$ oder $a_{\nu +1} = 0$.
+*Of the nine possible combinations for&nbsp; $a_{\nu} \cdot a_{\nu +1}$,&nbsp; only four yield a non-zero value.&nbsp; In the other cases,&nbsp; either&nbsp; $a_{\nu} = 0$&nbsp; or&nbsp; $a_{\nu +1} = 0$.
+*However,&nbsp; since in AMI code also
-Da beim AMI–Code aber auch
 :$${\rm Pr}[(a_\nu = +1) \cap (a_{\nu+1}= +1)]  = \ 0 \hspace{0.05cm},$$
 :$$ {\rm Pr}[(a_\nu = -1) \cap (a_{\nu+1}= -1)]  = \ 0$$
-zutrifft, erhält man mit
+:is true,&nbsp; one obtains as the final result&nbsp; (since the ACF is always an even function):
 :$${\rm Pr}[(a_\nu = +1) \cap (a_{\nu+1}= -1)] = \ {\rm Pr}(a_\nu = +1)\cdot {\rm Pr}(a_{\nu+1} = -1 | a_\nu = +1) = {1}/{4}\cdot{1}/{2} ={1}/{8} \hspace{0.05cm},$$
 :$${\rm Pr}[(a_\nu = -1) \cap (a_{\nu+1}= +1)] = \ {\rm Pr}(a_\nu = -1)\cdot {\rm Pr}(a_{\nu+1} = +1 | a_\nu = -1) =  {1}/{4}\cdot {1}/{2} = {1}/{8}$$
-[[File:P_ID1353__Dig_A_2_7f.png|right|frame|Autokorrelationsfunktionen des AMI-Codes]]
+[[File:P_ID1353__Dig_A_2_7f.png|right|frame|Auto-correlation functions of the AMI code]]
-als Endergebnis (da die AKF stets eine gerade Funktion ist):
-:$$\varphi_{a}(\lambda = +1) = \varphi_{a}(\lambda = –1) = –0.25.$$
+:$$\Rightarrow \hspace{0.3cm} \varphi_{a}(\lambda = +1) = \varphi_{a}(\lambda = -1) = -0.25.$$
-*Hierbei ist berücksichtigt, dass nach $a_{\nu} = +1$ mit gleicher Wahrscheinlichkeit $a_{\nu +1} = +1$ und $a_{\nu +1} = -1$ folgt.
+*This takes into account that&nbsp; $a_{\nu} = +1$&nbsp; is followed by&nbsp; $a_{\nu +1} = +1$&nbsp; and&nbsp; $a_{\nu +1} = -1$&nbsp; with equal probability.&nbsp; Thus,&nbsp; the result is:
-*Damit lautet das Ergebnis:
 :$$\varphi_a(\lambda = 0)\hspace{0.15cm}\underline {= 0.5} \hspace{0.05cm}, $$
 :$$\varphi_a(\lambda = 1)\hspace{0.15cm}\underline {= -0.25} \hspace{0.05cm},$$
 :$$\varphi_a(\lambda = 2)\hspace{0.15cm}\underline {= 0}.$$
-<br clear=all>
-Die Grafik zeigt
-*die diskrete AKF $\varphi_{a}(\lambda)$ der Amplitudenkoeffizienten und
-*die AKF $\varphi_{s}(\tau)$ des Sendesignals unter der Voraussetzung von NRZ–Rechteckimpulsen und AMI-Codierung.
-Dabei ist die blau gezeichnete AKF $\varphi_{s}(\tau)$ das Ergebnis der (diskreten) Faltung zwischen der diskreten AKF $\varphi_{a}(\lambda)$ – rot gezeichnet – und der dreieckförmigen Energie–AKF des Sendegrundimpulses.
+The graph shows
+#the discrete ACF&nbsp; $\varphi_{a}(\lambda)$&nbsp; of the amplitude coefficients,
+#the ACF&nbsp; $\varphi_{s}(\tau)$&nbsp; of the transmitted signal under the condition of NRZ rectangular pulses and AMI coding.
+Here,&nbsp; the ACF&nbsp; $\varphi_{s}(\tau)$&nbsp; (drawn in blue)&nbsp; is the result of the&nbsp; (discrete)&nbsp; convolution between the discrete ACF&nbsp; $\varphi_{a}(\lambda)$&nbsp; (drawn in red)&nbsp;  and the triangular energy ACF of the basic transmission pulse.
-'''(7)'''&nbsp; Aus der angegebenen Gleichung erhält man unter Berücksichtigung der in '''(6)''' berechneten diskreten AKF-Werte
+'''(7)'''&nbsp; From the given equation,&nbsp; taking into account the discrete ACF values calculated in&nbsp; '''(6)''',
 :$$\varphi_{a}(\lambda = 0) = 1/2,$$
 :$$\varphi_{a}(|\lambda| = 1) = -1/4,$$
-:$$\varphi_{a}(|\lambda| > 1) = 0$$
+:$$\varphi_{a}(|\lambda| > 1) = 0,$$
-das folgende Ergebnis:
+we obtain the following result:
 :$${\it \Phi}_a(f) = \ \sum_{\lambda = -\infty}^{+\infty}\varphi_a(\lambda)\cdot {\rm e}^{- {\rm j}\hspace{0.05cm} 2 \pi f \hspace{0.02cm} \lambda T} = \varphi_a(\lambda = 0) + 2 \cdot \varphi_a(\lambda = 1 )\cdot\cos ( 2 \pi f \hspace{0.02cm} \lambda T) = \ {1}/{2} \cdot \left [ 1 - \cos ( 2 \pi f \hspace{0.02cm} T)\right ] = \sin^2 ( \pi f \hspace{0.02cm} T) \hspace{0.05cm}.$$
-Insbesondere gilt:
+In particular holds:
 :$${\it \Phi}_a(f = 0) \hspace{0.15cm}\underline {= 0},$$
 :$${\it \Phi}_a(f = {1}/({2T})) = \sin^2 ({\pi}/{2})\hspace{0.15cm}\underline {= 1} \hspace{0.05cm}.$$
@@ Line 153: / Line 161: @@
-[[Category:Digital Signal Transmission: Exercises|^2.4 Pseudoternärcodes^]]
+[[Category:Digital Signal Transmission: Exercises|^2.4 Pseudo-Ternary Codes^]]