Difference between revisions of "Aufgaben:Exercise 3.11: Erasure Channel"

Latest revision as of 12:56, 24 September 2021

Erasure channel with
four inputs and five outputs

An erasure channel is considered with

the $M$ inputs $x ∈ X = \{1,\ 2, \ \text{...} \ ,\ M\}$, and
the $M + 1$ outputs $y ∈ Y = \{1,\ 2,\ \ \text{...} \ ,\ M,\ \text{E}\}.$

The graph shows the model for the special case $M = 4$. The sink symbol $y = \text{E}$ takes into account an erasure for the case that the receiver cannot make a sufficiently certain decision.

The transition probabilities are given for $1 ≤ μ ≤ M$ as follows:

$${\rm Pr}(Y \hspace{-0.05cm} = \mu\hspace{-0.05cm}\mid \hspace{-0.05cm} X \hspace{-0.05cm}= \mu) = 1-\lambda \hspace{0.05cm},$$

$${\rm Pr}(Y \hspace{-0.05cm} = {\rm E}\hspace{-0.05cm}\mid \hspace{-0.05cm} X \hspace{-0.05cm}= \mu) = \lambda \hspace{0.05cm}.$$

We are looking for:

the capacity $C_{M\rm –EC}$ of this M–ary Erasure Channel,
the capacity $C_{\rm BEC}$ of the Binary Erasure Channels as a special case of the above model.

Hints:

The exercise belongs to the chapter Application to Digital Signal Transmission.
Reference is made in particular to the page Information-theoretical model of digital signal transmission.
In the above diagram, "erasures" $($with probability $λ)$ are drawn in blue.
"Correct transmission paths" $($i.e., from $X = μ$ to $Y = μ)$ are shown in red ($1 ≤ μ ≤ M$).

Questions

	$P_X(X) = (0.5, \ 0.5),$
	$P_X(X) = (1/M,\ 1/M, \ \text{...} \ ,\ 1/M),$
	$P_X(X) = (0.1,\ 0.2,\ 0.3,\ 0.4).$

	Exactly $M · (M + 1)$,
	Exactly $M$,
	Exactly $2 · M$.

$H(Y) \ = \ $

$\ \rm bit$

$H(Y|X) \ = \ $

$\ \rm bit$

$M = 4\text{:} \hspace{0.5cm} C\ = \ $

$\ \rm bit$

$M = 2\text{:} \hspace{0.5cm} C\ = \ $

$\ \rm bit$

	$C_{\rm BEC} = 1 - λ,$
	$C_{\rm BEC} = 1 - H_{\rm bin}(λ).$

Solution

(1) Correct is the proposed solution 2:

Due to the symmetry of the transition probabilities $P_{Y|X}(Y|X)$ it is obvious that a uniform distribution will lead to the maximum mutual information $I(X; Y)$ and therefore to the channel capacity $C$ :

$$ P_X(X) = P_X\big ( \hspace{0.03cm}X\hspace{-0.03cm}=1\hspace{0.03cm}, \hspace{0.08cm} X\hspace{-0.03cm}=2\hspace{0.03cm},\hspace{0.08cm}\text{...}\hspace{0.08cm}, X\hspace{-0.03cm}=M\hspace{0.03cm}\big ) = \big [\hspace{0.03cm}1/M\hspace{0.03cm}, \hspace{0.08cm} 1/M\hspace{0.03cm},\hspace{0.03cm}\text{...}\hspace{0.08cm},\hspace{0.08cm} 1/M\hspace{0.03cm}\big ]\hspace{0.05cm}.$$

In the special case $M = 2$ also $P_X(X) = (0.5, \ 0.5)$ would be correct.

(2) Correct is the proposed solution 3, i.e. exactly $2M$ connections. Because:

From each source symbol $X = μ$ one gets to the sink symbol $Y = μ$ as well as to the erasure $Y = \text{E}$.

(3) All probabilities ${\rm Pr}(Y = 1), \hspace{0.05cm} \text{...}\hspace{0.05cm} , \hspace{0.08cm}{\rm Pr}(Y = M)$ are equal. Thus, for $μ = 1, \hspace{0.05cm} \text{...} \hspace{0.05cm} , \hspace{0.08cm} M$ we obtain:

$${\rm Pr}(Y \hspace{-0.05cm} = \mu) = ( 1-\lambda)/M \hspace{0.05cm}.$$

Moreover, from each source symbol $X = 1, \hspace{0.05cm} \text{...}\hspace{0.05cm} , X = M$ one also gets to the erasure $Y = \text{E}$:

$${\rm Pr}(Y \hspace{-0.05cm} = {\rm E}) = \lambda \hspace{0.05cm}.$$

Inspection reveals that the sum of all $M + 1$ sink symbol probabilities actually adds up t $1$ .
It follows for the sink entropy:

$$H(Y) = M \cdot \frac{ 1-\lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{M}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm} \lambda \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{\lambda} \hspace{0.05cm}.$$

Summarized with the binary entropy function, this gives:

$$H(Y) = (1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M \hspace{0.15cm}+\hspace{0.15cm} H_{\rm bin} (\lambda ) \hspace{0.05cm}$$

and with $M = 4$ as well as $ λ = 0.2$:

$$H(Y) = 1.6 \,{\rm bit} + H_{\rm bin} (0.2 ) \hspace{0.15cm} \underline {=2.322\,{\rm bit}} \hspace{0.05cm}.$$

(4) The $2M$ joint probabilities

$${\rm Pr} \big[(X = μ) ∩ (Y = κ)\big] ≠ 0$$

and the conditional probabilities

$$pκ|μ = {\rm Pr}(Y = κ|X = μ)$$

show the following properties:

The combination $p_{μκ} = (1 – λ)/M$ and $p_{κ|μ} = 1 – λ$ occurs $M$ times.
The combination $p_{μκ} = λ/M$ and $p_{κ|μ} = λ$ also occurs $M$ times.

It follows that:

$$ H(Y \hspace{-0.15cm}\mid \hspace{-0.15cm} X) \hspace{-0.01cm} =\hspace{-0.01cm} M \cdot \frac{ 1-\lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm}M \cdot \frac{ \lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{ \lambda} = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm} \lambda \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{ \lambda} = H_{\rm bin} (\lambda)\hspace{0.05cm}.$$

The result is independent of $M$. With $λ = 0.2$ we obtain:

$$H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) = H_{\rm bin} (0.2 ) \hspace{0.15cm} \underline {=0.722\,{\rm bit}} \hspace{0.05cm}.$$

(5) The channel capacity $C$ is equal to the maximum mutual information $I(X; Y)$, where the maximization with respect to $P_X(X)$ has already been considered by the symmetric approach:

$$ C = \max_{P_X(X)} \hspace{0.15cm} I(X;Y) = H(Y) - H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M + H_{\rm bin} (\lambda) - H_{\rm bin} (\lambda) = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M \hspace{0.05cm}$$

$$\Rightarrow \hspace{0.3cm} M = 4\text{:} \hspace{0.3cm} \underline {C=1.6\,\,{\rm bit}} \hspace{0.05cm}, \hspace{0.8cm} M = 2\text{:} \hspace{0.3cm} \underline {C=0.8\,\,{\rm bit}} \hspace{0.05cm}.$$

(6) The "Binary Erasure Channel" $\rm (BEC)$ is a special case of the general model considered here with $M = 2$:

$$C_{\rm BEC} = 1-\lambda \hspace{0.05cm}.$$

Thus, the correct solution proposal 1.
The second proposed solution, on the other hand, applies to the "Binary Symmetric Channel" $\rm (BSC)$ with distortion probability $λ$.

@@ Line 1: / Line 1: @@
-{{quiz-Header|Buchseite=Informationstheorie/Anwendung auf die Digitalsignalübertragung
+{{quiz-Header|Buchseite=Information_Theory/Application_to_Digital_Signal_Transmission
 }}
-[[File:P_ID2791__Inf_A_3_10.png|right|]]
+[[File:P_ID2791__Inf_A_3_10.png|right|frame|Erasure channel with <br>four inputs and five outputs]]
-Betrachtet wird ein Auslöschungskanal mit
+An erasure channel is considered with
-:* den M Eingängen $x ∈ X = \{1, 2, ... , M\}$, und
+* the&nbsp; $M$&nbsp; inputs&nbsp; $x ∈ X = \{1,\ 2, \ \text{...} \  ,\ M\}$,&nbsp; and
-:* den $M + 1$ Ausgängen $y ∈ Y = \{1, 2, ... , M, E\}$
+* the&nbsp; $M + 1$&nbsp; outputs&nbsp; $y ∈ Y = \{1,\ 2,\ \ \text{...} \  ,\ M,\ \text{E}\}.$
-Die Grafik zeigt das Modell für den Sonderfall $M = 4$. Das Sinkensymbol $y = E$ berücksichtigt eine Auslöschung (englisch: Erasure) für den Fall, dass der Empfänger keine hinreichend gesicherte Entscheidung treffen kann
-Die Übergangswahrscheinlichkeiten sind für $1 ≤ μ ≤ M$ wie folgt gegeben:
+The graph shows the model for the special case&nbsp; $M = 4$.&nbsp; The sink symbol&nbsp; $y = \text{E}$&nbsp; takes into account an erasure for the case that the receiver cannot make a sufficiently certain decision.
-$${\rm Pr}(Y \hspace{-0.05cm} = \mu\hspace{-0.05cm}\mid \hspace{-0.05cm} X \hspace{-0.05cm}= \mu) \hspace{-0.15cm}  = \hspace{-0.15cm} 1-\lambda \hspace{0.05cm}$$
-$${\rm Pr}(Y \hspace{-0.05cm} = {\rm E}\hspace{-0.05cm}\mid \hspace{-0.05cm} X \hspace{-0.05cm}= \mu) \hspace{-0.15cm} =\hspace{-0.15cm} \lambda \hspace{0.05cm}$$
-Gesucht ist
-:* die Kapazität $C_{M–EC}$ dieses ''M–ary Erasure Channels'',
-:* die Kapazität $C_{BEC}$ des Binary Erasure Channels als Sonderfall des obigen Modells,
-'''Hinweis:''' Die Aufgabe beschreibt die Thematik von [http://en.lntwww.de/Informationstheorie/Anwendung_auf_die_Digitalsignal%C3%BCbertragung Kapitel 3.3]. In dem obigen Schaubild sind Auslöschungen (Wahrscheinlichkeit $λ$) blau gezeichnet und „richtige Übertragungswege” (also von $X = μ$ nach $Y = μ$) blau ($1 ≤ μ ≤ M$).
+The transition probabilities are given for&nbsp; $1 ≤ μ ≤ M$&nbsp; as follows:
+:$${\rm Pr}(Y \hspace{-0.05cm} = \mu\hspace{-0.05cm}\mid \hspace{-0.05cm} X \hspace{-0.05cm}= \mu) = 1-\lambda \hspace{0.05cm},$$
+:$${\rm Pr}(Y \hspace{-0.05cm} = {\rm E}\hspace{-0.05cm}\mid \hspace{-0.05cm} X \hspace{-0.05cm}= \mu) = \lambda \hspace{0.05cm}.$$
+We are looking for:
+* the capacity &nbsp;$C_{M\rm –EC}$&nbsp; of this M–ary Erasure Channel,
+* the capacity &nbsp;$C_{\rm BEC}$&nbsp; of the&nbsp; [[Channel_Coding/Kanalmodelle_und_Entscheiderstrukturen#Binary_Erasure_Channel_.E2.80.93_BEC|Binary Erasure Channels]]&nbsp; as a special case of the above model.
-===Fragebogen===
+Hints:
+*The exercise belongs to the chapter&nbsp; [[Information_Theory/Anwendung_auf_die_Digitalsignalübertragung|Application to Digital Signal Transmission]].
+*Reference is made in particular to the page&nbsp;    [[Information_Theory/Anwendung_auf_die_Digitalsignalübertragung#Information-theoretical_model_of_digital_signal_transmission|Information-theoretical model of digital signal transmission]].
+*In the above diagram,&nbsp; "erasures"&nbsp; $($with probability&nbsp; $λ)$&nbsp; are drawn in blue.
+* "Correct transmission paths"&nbsp; $($i.e., from&nbsp; $X = μ$&nbsp; to&nbsp; $Y = μ)$&nbsp; are shown in red &nbsp;($1 ≤ μ ≤ M$).
+===Questions===
 <quiz display=simple>
-{ Welches $P_X(X)$ ist zur Kanalkapazitätsberechnung allgemein anzusetzen?
+{ What&nbsp; $P_X(X)$&nbsp; should be generally applied for the channel capacity calculation?
 |type="[]"}
-- $P_X(X) = (0.5, 0.5)$
+- $P_X(X) = (0.5, \  0.5),$
-+ $P_X(X) = (1/M, 1/M, ... , 1/M)$
++ $P_X(X) = (1/M,\ 1/M, \ \text{...} \ ,\ 1/M),$
-- $P_X(X) = (0.1, 0.2, 0.3, 0.4)$
+- $P_X(X) = (0.1,\ 0.2,\ 0.3,\ 0.4).$
-{Wie viele Wahrscheinlichkeiten $p_{μκ} = Pr[(X = μ) ∩ (Y = κ)]$ sind $≠ 0$?
+{How many probabilities&nbsp; $p_{μκ} = {\rm Pr}\big[(X = μ) ∩ (Y = κ)\big]$&nbsp; are nonzero?
-|type="[]"}
+|type="()"}
-- Genau $M · (M + 1)$
+- Exactly&nbsp; $M · (M + 1)$,
-- Genau $M$
+- Exactly&nbsp; $M$,
-+ Genau $2 · M$
++ Exactly&nbsp; $2 · M$.
-{Wie groß ist die Sinkenentropie allgemein und für $M = 4$ und $λ = 0.2$?
+{What is the sink entropy in general and for &nbsp;$M = 4$&nbsp; and &nbsp;$λ = 0.2$?
 |type="{}"}
-$ M = 4, λ = 0.2:   H(Y)$ = { 2.322 3% } $bit$
+$H(Y) \ = \ $  { 2.322 3% } $\ \rm bit$
-{Berechnen Sie die Irrelevanz. Welcher Wert ergibt sich für $M = 4, λ = 0.2$?
+{Calculate the irrelevance.&nbsp; What is the value for &nbsp;$M = 4$&nbsp; and &nbsp;$λ = 0.2$?
 |type="{}"}
-$M = 4, λ = 0.2:   H(Y|X)$ = { 0.722 3% } $bit$
+$H(Y|X) \ = \ $ { 0.722 3% } $\ \rm bit$
-{Wie groß ist die Kanalkapazität in Abhängigkeit von $M$?
+{What is the channel capacity &nbsp;$C$&nbsp; as a function of &nbsp;$M$?
 |type="{}"}
-$M = 4:   C$ = { 1.6 3 % } $bit$
+$M = 4\text{:} \hspace{0.5cm}   C\ = \ $ { 1.6 3% } $\ \rm bit$
-$M = 2:   C$ = { 0.8  3% } $bit$
+$M = 2\text{:} \hspace{0.5cm}   C\ = \ $ { 0.8 3% } $\ \rm bit$
-{Wie lautet die Kanalkapazität des BEC–Kanals in kompakter Form?
+{What is the channel capacity of the BEC channel in compact form?
-|type="[]"}
+|type="()"}
-+ $C_{BEC} = 1 – λ$
++ $C_{\rm BEC} = 1 - λ,$
-- $C_{BEC} = 1 – Hbin(λ)$
+- $C_{\rm BEC} = 1 - H_{\rm bin}(λ).$
@@ Line 58: / Line 74: @@
 </quiz>
-===Musterlösung===
+===Solution===
 {{ML-Kopf}}
-'''1.'''  Aufgrund der Symmetrie der Übergangswahrscheinlichkeiten $P_{Y|X}(Y|X)$ ist offensichtlich, dass eine Gleichverteilung zur maximalen Transinformation $I(X; Y)$ und damit zur Kanalkapazität $C$ führen wird:
+'''(1)'''&nbsp;  Correct is the <u>proposed solution 2:</u>
-$$ P_X(X) = P_X\big ( \hspace{0.03cm}X\hspace{-0.03cm}=1\hspace{0.03cm}, \hspace{0.03cm} X\hspace{-0.03cm}=2\hspace{0.03cm},\hspace{0.03cm}...\hspace{0.08cm}, X\hspace{-0.03cm}=M\hspace{0.03cm}\big ) = \big [\hspace{0.03cm}1/M\hspace{0.03cm}, \hspace{0.03cm} 1/M\hspace{0.03cm},\hspace{0.03cm}...\hspace{0.08cm}, 1/M\hspace{0.03cm}\big ]\hspace{0.05cm}$$
+* Due to the symmetry of the transition probabilities&nbsp; $P_{Y|X}(Y|X)$&nbsp; it is obvious that a uniform distribution will lead to the maximum mutual information&nbsp; $I(X; Y)$&nbsp; and therefore to the channel capacity&nbsp; $C$&nbsp;:
-Richtig ist also der ''Lösungsvorschlag 2.'' Im Sonderfall $M = 2$ wäre auch $P_X(X) = (0.5, 0.5)$ richtig.
+:$$ P_X(X) = P_X\big ( \hspace{0.03cm}X\hspace{-0.03cm}=1\hspace{0.03cm}, \hspace{0.08cm} X\hspace{-0.03cm}=2\hspace{0.03cm},\hspace{0.08cm}\text{...}\hspace{0.08cm}, X\hspace{-0.03cm}=M\hspace{0.03cm}\big ) = \big [\hspace{0.03cm}1/M\hspace{0.03cm}, \hspace{0.08cm} 1/M\hspace{0.03cm},\hspace{0.03cm}\text{...}\hspace{0.08cm},\hspace{0.08cm} 1/M\hspace{0.03cm}\big ]\hspace{0.05cm}.$$
+*In the special case&nbsp; $M = 2$&nbsp; also&nbsp; $P_X(X) = (0.5, \ 0.5)$&nbsp; would be correct.
+'''(2)'''&nbsp;  Correct is the <u>proposed solution 3</u>, i.e. exactly&nbsp; $2M$&nbsp; connections.&nbsp; Because:
+*From each source symbol&nbsp; $X = μ$&nbsp; one gets to the sink symbol&nbsp; $Y = μ$&nbsp; as well as to the erasure&nbsp; $Y = \text{E}$.
+'''(3)'''&nbsp;  All probabilities&nbsp; ${\rm Pr}(Y = 1), \hspace{0.05cm} \text{...}\hspace{0.05cm} , \hspace{0.08cm}{\rm Pr}(Y = M)$&nbsp; are equal.&nbsp; Thus, for&nbsp; $μ = 1, \hspace{0.05cm} \text{...} \hspace{0.05cm} , \hspace{0.08cm} M$ we obtain:
+:$${\rm Pr}(Y \hspace{-0.05cm} = \mu) = ( 1-\lambda)/M \hspace{0.05cm}.$$
+*Moreover, from each source symbol&nbsp; $X = 1, \hspace{0.05cm} \text{...}\hspace{0.05cm}  , X = M$&nbsp; one also gets to the erasure&nbsp; $Y = \text{E}$:
+:$${\rm Pr}(Y \hspace{-0.05cm} = {\rm E}) = \lambda \hspace{0.05cm}.$$
+*Inspection reveals that the sum of all&nbsp; $M + 1$&nbsp; sink symbol probabilities actually adds up t&nbsp; $1$&nbsp;.&nbsp;
+*It follows for the sink entropy:
+:$$H(Y) = M \cdot \frac{ 1-\lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{M}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm} \lambda \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{\lambda} \hspace{0.05cm}.$$
+*Summarized with the binary entropy function, this gives:
+:$$H(Y) = (1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M \hspace{0.15cm}+\hspace{0.15cm} H_{\rm bin} (\lambda ) \hspace{0.05cm}$$
+:and with&nbsp; $M = 4$&nbsp; &nbsp;as well as&nbsp; $ λ = 0.2$:
+:$$H(Y) = 1.6 \,{\rm bit} + H_{\rm bin} (0.2 ) \hspace{0.15cm} \underline {=2.322\,{\rm bit}} \hspace{0.05cm}.$$
+'''(4)'''&nbsp;  The&nbsp; $2M$&nbsp; joint probabilities
+:$${\rm Pr} \big[(X = μ) ∩ (Y = κ)\big] ≠ 0$$
+:and the conditional probabilities
+:$$pκ|μ = {\rm Pr}(Y = κ|X = μ)$$
+:show the following properties:
+#&nbsp; The combination&nbsp; $p_{μκ} = (1 – λ)/M$  &nbsp;and&nbsp;  $p_{κ|μ} = 1 – λ$&nbsp; occurs&nbsp; $M$&nbsp; times.
+#&nbsp; The combination&nbsp; $p_{μκ} = λ/M$  &nbsp;and&nbsp;  $p_{κ|μ} = λ$&nbsp; also occurs $M$ times.
+It follows that:
+:$$ H(Y \hspace{-0.15cm}\mid \hspace{-0.15cm} X) \hspace{-0.01cm}  =\hspace{-0.01cm} M \cdot \frac{ 1-\lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm}M \cdot \frac{ \lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{ \lambda} = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm} \lambda \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{ \lambda} = H_{\rm bin} (\lambda)\hspace{0.05cm}.$$
+*The result is independent of&nbsp; $M$.&nbsp; With&nbsp; $λ = 0.2$&nbsp; we obtain:
+:$$H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) = H_{\rm bin} (0.2 ) \hspace{0.15cm} \underline {=0.722\,{\rm bit}} \hspace{0.05cm}.$$
-'''2.'''Von jedem Quellensymbol $X = μ$ kommt man sowohl zum Sinkensymbol $Y = μ$ als auch zum Erasure $Y = E  ⇒$  Zutreffend ist dementsprechend der ''Lösungsvorschlag 3''  $⇒$  Genau $2M$ Verbindungen.
-'''3.''' Alle Wahrscheinlichkeiten $Pr(Y = 1), ... , Pr(Y = M)$ sind gleich groß. Man erhält für $μ = 1, ... , M$:
+'''(5)'''&nbsp;  The channel capacity&nbsp; $C$&nbsp; is equal to the maximum mutual information&nbsp; $I(X; Y)$,&nbsp; where the maximization with respect to&nbsp; $P_X(X)$&nbsp; has already been considered by the symmetric approach:
-$${\rm Pr}(Y \hspace{-0.05cm} = \mu) = \frac{ 1-\lambda }{M} \hspace{0.05cm}$$
+:$$ C = \max_{P_X(X)} \hspace{0.15cm} I(X;Y) = H(Y) - H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M + H_{\rm bin} (\lambda) - H_{\rm bin} (\lambda) = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M \hspace{0.05cm}$$
-Außerdem kommt man von jedem Quellensymbol $X = 1, ... , X = M$ auch zum Erasure$ Y = E$:
+:$$\Rightarrow \hspace{0.3cm} M = 4\text{:} \hspace{0.3cm} \underline {C=1.6\,\,{\rm bit}} \hspace{0.05cm}, \hspace{0.8cm}
-$${\rm Pr}(Y \hspace{-0.05cm} = {\rm E}) = \lambda \hspace{0.05cm}$$
+M = 2\text{:} \hspace{0.3cm} \underline {C=0.8\,\,{\rm bit}} \hspace{0.05cm}.$$
-Die Kontrolle ergibt, dass die Summe aller $M + 1$ Sinkensymbolwahrscheinlichkeiten tatsächlich 1 ergibt. Daraus folgt für die Sinkenentropie
-$$H(Y) = M \cdot \frac{ 1-\lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{M}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm} \lambda \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{\lambda} \hspace{0.05cm}$$
-Zusammengefasst ergibt dies mit der [http://en.lntwww.de/Informationstheorie/Ged%C3%A4chtnislose_Nachrichtenquellen#Bin.C3.A4re_Entropiefunktion binären Entropiefunktion]:
-$$H(Y) = (1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M \hspace{0.15cm}+\hspace{0.15cm} H_{\rm bin} (\lambda ) \hspace{0.05cm}$$
-und mit $M = 4$ sowie$ λ = 0.2$:
-$$H(Y) = 1.6 \,{\rm bit} + H_{\rm bin} (0.2 ) \hspace{0.15cm} \underline {=2.322\,{\rm bit}} \hspace{0.05cm}$$
-'''4.'''  Für die $2M$ Verbundwahrscheinlichkeiten  $⇒  pμκ = Pr [(X = μ) ∩ (Y = κ)] ≠ 0$ und die zugehörigen bedingten Wahrscheinlichkeiten  $⇒  pκ|μ = Pr(Y = κ|X = μ)$ gilt:
-:* Die Kombination $p_{μκ} = (1 – λ)/M$  und  $p_{κ|μ} = 1 – λ$ kommt $M$ mal vor.
-:* Die Kombination $p_{μκ} = λ/M$  und  $p_{κ|μ} = λ$ kommt ebenfalls $M$ mal vor.
-$$ H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) \hspace{-0.15cm}  =\hspace{-0.15cm} M \cdot \frac{ 1-\lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm}M \cdot \frac{ \lambda }{M} \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{ \lambda} =$$
-$$=\hspace{-0.15cm} ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{1 - \lambda} \hspace{0.15cm}+\hspace{0.15cm} \lambda \cdot {\rm log}_2 \hspace{0.1cm} \frac{1}{ \lambda} = H_{\rm bin} (\lambda)\hspace{0.05cm}$$
-Das Ergebnis ist unabhängig von $M$. Mit $λ = 0.2$ erhält man:
-$$H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) = H_{\rm bin} (0.2 ) \hspace{0.15cm} \underline {=0.722\,{\rm bit}} \hspace{0.05cm}$$
-'''5.''' Die Kanalkapazität $C$ ist gleich der maximalen Transinformation $I(X; Y)$, wobei die Maximierung hinsichtlich $P_X(X)$ bereits durch den symmetrischen Ansatz berücksichtigt wurde:
-$$ C \hspace{-0.15cm}  =  \hspace{-0.15cm} \max_{P_X(X)} \hspace{0.15cm} I(X;Y) = H(Y) - H(Y \hspace{-0.1cm}\mid \hspace{-0.1cm} X) =$$
-$$= \hspace{-0.15cm} ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M + H_{\rm bin} (\lambda) - H_{\rm bin} (\lambda) = ( 1-\lambda) \cdot {\rm log}_2 \hspace{0.1cm} M \hspace{0.05cm}$$
-$$\Rightarrow \hspace{0.3cm} M \hspace{-0.15cm}  = \hspace{-0.15cm} 4: \hspace{0.5cm} \underline {C=1.6\,\,{\rm bit}} \hspace{0.05cm}$$
-$$M \hspace{-0.15cm}  =\hspace{-0.15cm} 2: \hspace{0.5cm} \underline {C=0.8\,\,{\rm bit}} \hspace{0.05cm}$$
-'''6.''' Der BEC–Kanal ist ein Sonderfall des hier betrachteten allgemeinen Modells mit $M = 2$:
+'''(6)'''&nbsp;  The&nbsp; "Binary Erasure Channel"&nbsp; $\rm (BEC)$&nbsp; is a special case of the general model considered here with&nbsp; $M = 2$:
-$$C_{\rm BEC} = 1-\lambda \hspace{0.05cm}$$
+:$$C_{\rm BEC} = 1-\lambda \hspace{0.05cm}.$$
-Richtig ist somit der ''Lösungsvorschlag 1''. Der zweite Lösungsvorschlag gilt dagegen für den [http://en.lntwww.de/index.php?title=Digitalsignal%C3%BCbertragung/Binary_Symmetric_Channel_(BSC)&action=edit&redlink=1 Binary Symmetric Channel] (BSC) mit der Verfälschungswahrscheinlichkeit $λ$.
+*Thus, the correct <u>solution proposal 1</u>.
+*The second proposed solution, on the other hand, applies to the&nbsp; "Binary Symmetric Channel"&nbsp; $\rm (BSC)$&nbsp; with distortion probability&nbsp; $λ$.
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-[[Category:Aufgaben zu Informationstheorie|^3.3 Anwendung auf DSÜ-Kanäle^]]
+[[Category:Information Theory: Exercises|^3.3 Application to Digital Signal Transmission^]]