Difference between revisions of "Channel Coding/Information Theoretical Limits of Channel Coding"

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== Channel coding theorem and channel capacity ==
 
== Channel coding theorem and channel capacity ==
 
<br>
 
<br>
We further consider a binary block code with&nbsp; $k$&nbsp; information bits per block and codewords of length&nbsp; $n$, resulting in the code rate&nbsp; $R=k/n$&nbsp; with the unit "information bit/code symbol".<br>
+
We further consider a binary block code with&nbsp;  
 +
*$k$&nbsp; information bits per block,
 +
*code words of length&nbsp; $n$,  
 +
*resulting in the code rate&nbsp; $R=k/n$&nbsp; with the unit&nbsp; "information bit/code symbol".<br>
  
The ingenious information theorist&nbsp; [https://en.wikipedia.org/wiki/Claude_Shannon Claude E. Shannon]&nbsp; has dealt very intensively with the correctability of such codes already in 1948 and has given for this a limit for each channel which results from information-theoretical considerations alone. Up to this day, no code has been found which exceeds this limit, and this will remain so.<br>
+
 
 +
The ingenious information theorist&nbsp; [https://en.wikipedia.org/wiki/Claude_Shannon $\text{Claude E. Shannon}$]&nbsp; has dealt very intensively with the correctability of such codes already in 1948 and has given for this a limit for each channel which results from information-theoretical considerations alone.&nbsp; Up to this day,&nbsp; no code has been found which exceeds this limit,&nbsp; and this will remain so.<br>
  
 
{{BlaueBox|TEXT=   
 
{{BlaueBox|TEXT=   
$\text{Shannon's channel coding theorem:}$&nbsp;  For each channel with channel capacity&nbsp; $C > 0$&nbsp; there always exists (at least) one code whose error probability approaches zero as long as the code rate&nbsp; $R$&nbsp; is smaller than the channel capacity&nbsp; $C$. The prerequisite for this is that the following holds for the block length of this code: &nbsp; $n \to \infty$.}}<br>
+
$\text{Shannon's channel coding theorem:}$&nbsp;  For each channel with channel capacity&nbsp; $C > 0$&nbsp; there always exists&nbsp; (at least)&nbsp; one code whose error probability approaches zero as long as the code rate&nbsp; $R$&nbsp; is smaller than the channel capacity&nbsp; $C$.&nbsp; The prerequisite for this is that the following holds for the block length of this code: &nbsp;  
 +
:$$n \to \infty.$$}}<br>
 +
 
 +
Notes:&nbsp;
 +
*The statement&nbsp; "The error probability approaches zero"&nbsp; is not identical with the statement&nbsp; "The transmission is error-free".&nbsp; Example: &nbsp; For an infinitely long sequence,&nbsp; finitely many symbols are falsified.
  
''Notes:''&nbsp;
+
*For some channels,&nbsp; even with&nbsp; $R=C$&nbsp; the error probability still goes towards zero&nbsp; (but not for all).  
*The statement "The error probability approaches zero" is not identical with the statement "The transmission is error-free". Example: &nbsp; For an infinitely long sequence, finitely many symbols are corrupted.
 
*For some channels, even with&nbsp; $R=C$&nbsp; the error probability still goes towards zero (but not for all).  
 
  
  
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{{BlaueBox|TEXT=   
 
{{BlaueBox|TEXT=   
$\text{Inverse:}$&nbsp;  If the code rate&nbsp; $R$&nbsp; is larger than the channel capacity&nbsp; $C$, then an arbitrarily small error probability cannot be achieved in any case}}.<br>
+
$\text{Inverse:}$&nbsp;  If the code rate&nbsp; $R$&nbsp; is larger than the channel capacity&nbsp; $C$,&nbsp; then an arbitrarily small error probability cannot be achieved in any case.}}<br>
  
To derive and calculate the channel capacity, we first assume a digital channel with&nbsp; $M_x$&nbsp; possible input values&nbsp; $x$&nbsp; and&nbsp; $M_y$&nbsp; possible output values&nbsp; $y$&nbsp;. Then, for the mean mutual information&ndash; briefly, the&nbsp; [[Information_Theory/Different_Entropy_Measures_of_Two-Dimensional_Random_Variables#Mutual_information_between_two_random_variables|"mutual information"]]&nbsp; &ndash; between the random variable&nbsp; $x$&nbsp; at the channel input and the random variable&nbsp; $y$&nbsp; at its output:
+
To derive and calculate the channel capacity,&nbsp; we first assume a digital channel with&nbsp; $M_x$&nbsp; possible input values&nbsp; $x$&nbsp; and&nbsp; $M_y$&nbsp; possible output values&nbsp; $y$.&nbsp; Then,&nbsp; for the mean mutual information&nbsp; &ndash; in short,&nbsp; the&nbsp; [[Information_Theory/Different_Entropy_Measures_of_Two-Dimensional_Random_Variables#Mutual_information_between_two_random_variables|$\text{mutual information}$]] &nbsp; &ndash;&nbsp; between the random variable&nbsp; $x$&nbsp; at the channel input and the random variable&nbsp; $y$&nbsp; at its output:
  
 
::<math>I(x; y) =\sum_{i= 1 }^{M_X} \hspace{0.15cm}\sum_{j= 1 }^{M_Y} \hspace{0.15cm}{\rm Pr}(x_i, y_j) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i)}{{\rm Pr}(y_j)} =  \sum_{i= 1 }^{M_X} \hspace{0.15cm}\sum_{j= 1 }^{M_Y}\hspace{0.15cm}{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i) \cdot {\rm Pr}(x_i) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i)}{\sum_{k= 1}^{M_X} {\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_k) \cdot {\rm Pr}(x_k)}
 
::<math>I(x; y) =\sum_{i= 1 }^{M_X} \hspace{0.15cm}\sum_{j= 1 }^{M_Y} \hspace{0.15cm}{\rm Pr}(x_i, y_j) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i)}{{\rm Pr}(y_j)} =  \sum_{i= 1 }^{M_X} \hspace{0.15cm}\sum_{j= 1 }^{M_Y}\hspace{0.15cm}{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i) \cdot {\rm Pr}(x_i) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i)}{\sum_{k= 1}^{M_X} {\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_k) \cdot {\rm Pr}(x_k)}
 
  \hspace{0.05cm}.</math>
 
  \hspace{0.05cm}.</math>
  
In the transition from the first to the second equation, the&nbsp; [[Theory_of_Stochastic_Signals/Statistical_Dependence_and_Independence#Conditional_Probability| "Theorem of Bayes"]]&nbsp; and the&nbsp; [[Theory_of_Stochastic_Signals/Statistical_Dependence_and_Independence#Inference_probability| "Theorem of Total Probability"]]&nbsp; were considered.  
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In the transition from the first to the second equation, the &nbsp; [[Theory_of_Stochastic_Signals/Statistical_Dependence_and_Independence#Conditional_Probability| $\text{Theorem of Bayes}$]] &nbsp; and the &nbsp; [[Theory_of_Stochastic_Signals/Statistical_Dependence_and_Independence#Inference_probability| $\text{Theorem of Total Probability}$]] &nbsp; were considered.  
  
Further, it should be noted:  
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Further,&nbsp; it should be noted:  
*The <i>binary logarithm </i>&nbsp; is denoted here with "log<sub>2</sub>". Partially, we also use "ld" ('''Logarithmus dualis''' in German) for this in our learning tutorial .  
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*The&nbsp; "binary logarithm"&nbsp; is denoted here with&nbsp; "log<sub>2</sub>".&nbsp; Partially,&nbsp; we also use&nbsp; "ld"&nbsp; ("logarithm dualis")&nbsp; for this in our learning tutorial.
*In contrast to the book&nbsp; "[[Information_Theory]]"&nbsp; we do not distinguish in the following between the random variable  $($upper case letters&nbsp; $X$&nbsp; or&nbsp; $Y)$&nbsp; and the realizations $($lower case letters&nbsp; $x$&nbsp; bzw.&nbsp; $y)$.<br>
+
 +
*In contrast to the book&nbsp; [[Information_Theory|$\text{Information Theory}$]]&nbsp; we do not distinguish in the following between the random variable&nbsp; $($upper case letters&nbsp; $X$&nbsp; resp.&nbsp; $Y)$&nbsp; and the realizations $($lower case letters&nbsp; $x$&nbsp; resp.&nbsp; $y)$.<br>
  
  
 
{{BlaueBox|TEXT=   
 
{{BlaueBox|TEXT=   
$\text{Definition:}$&nbsp;  The&nbsp; '''channel capacity''''&nbsp; introduced by Shannon gives the maximum mutual information&nbsp; $I(x; y)$&nbsp; between the input variable&nbsp; $x$&nbsp; and the output variable&nbsp; $y$&nbsp; :
+
$\text{Definition:}$&nbsp;  The&nbsp; &raquo;'''channel capacity'''&laquo;&nbsp; introduced by Shannon gives the maximum mutual information&nbsp; $I(x; y)$&nbsp; between the input variable&nbsp; $x$&nbsp; and output variable&nbsp; $y$:
 
::<math>C = \max_{{{\rm Pr}(x_i)}} \hspace{0.1cm} I(X; Y) \hspace{0.05cm}.</math>
 
::<math>C = \max_{{{\rm Pr}(x_i)}} \hspace{0.1cm} I(X; Y) \hspace{0.05cm}.</math>
  
The pseudo&ndash;unit "bit/channel use" must be added.}}<br>
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*The pseudo&ndash;unit&nbsp; "bit/channel use"&nbsp; must be added.}}<br>
  
Since the maximization of the mutual information must be done over all possible (discrete) input distributions&nbsp; ${\rm Pr}(x_i)$&nbsp; the channel capacity is independent of the input and thus a pure channel parameter.<br>
+
:Since the maximization of the mutual information&nbsp; $I(x; y)$&nbsp; must be done over all possible&nbsp; (discrete)&nbsp; input distributions&nbsp; ${\rm Pr}(x_i)$,
 +
::&raquo;'''the channel capacity is independent of the input and thus a pure channel parameter'''&laquo;.<br>
  
 
== Channel capacity of the BSC model ==
 
== Channel capacity of the BSC model ==
 
<br>
 
<br>
We now apply these definitions to the&nbsp; [[Channel_Coding/Channel_Models_and_Decision_Structures#Binary_Symmetric_Channel_.E2.80.93_BSC|"BSC model"]]&nbsp; (''Binary Symmetric Channel&nbsp;''):
+
We now apply these definitions to the&nbsp; [[Channel_Coding/Channel_Models_and_Decision_Structures#Binary_Symmetric_Channel_.E2.80.93_BSC|$\text{BSC model}$]]&nbsp; ("Binary Symmetric Channel"):
  
 
::<math>I(x; y) = {\rm Pr}(y = 0 \hspace{0.03cm}| \hspace{0.03cm}x = 0) \cdot {\rm Pr}(x = 0)  
 
::<math>I(x; y) = {\rm Pr}(y = 0 \hspace{0.03cm}| \hspace{0.03cm}x = 0) \cdot {\rm Pr}(x = 0)  
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  \hspace{0.05cm}.</math>
 
  \hspace{0.05cm}.</math>
  
[[File:KC_T_1_7_Zusatz_version2.png|right|frame|BSC channel model|class=fit]]
+
The channel capacity is arrived at by the following considerations:
 +
[[File:KC_T_1_7_Zusatz_version2.png|right|frame|Binary symmetric channel|class=fit]]
  
The channel capacity is arrived at by the following considerations:
 
 
*Maximization with respect to the input distribution leads to equally probable symbols:
 
*Maximization with respect to the input distribution leads to equally probable symbols:
  
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  \hspace{0.05cm}.</math>
 
  \hspace{0.05cm}.</math>
  
*Due to the symmetry evident from the model, the following then holds simultaneously:
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*Due to the symmetry evident from the model,&nbsp; the following then holds simultaneously:
  
 
::<math>{\rm Pr}(y = 0) = {\rm Pr}(y = 1) = 1/2
 
::<math>{\rm Pr}(y = 0) = {\rm Pr}(y = 1) = 1/2
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::<math>{\rm Pr}(y = 0 \hspace{0.05cm}| \hspace{0.05cm}x = 0) = {\rm Pr}(y = 1 \hspace{0.05cm}| \hspace{0.05cm}x = 1) = 1-\varepsilon  \hspace{0.05cm}.</math>
 
::<math>{\rm Pr}(y = 0 \hspace{0.05cm}| \hspace{0.05cm}x = 0) = {\rm Pr}(y = 1 \hspace{0.05cm}| \hspace{0.05cm}x = 1) = 1-\varepsilon  \hspace{0.05cm}.</math>
  
*After combining two terms each, we thus obtain:
+
*After combining two terms each,&nbsp; we thus obtain:
  
 
::<math>C \hspace{0.15cm}  =  \hspace{0.15cm} 2 \cdot 1/2 \cdot \varepsilon \cdot {\rm log_2 } \hspace{0.15cm}\frac{\varepsilon}{1/2 }+  
 
::<math>C \hspace{0.15cm}  =  \hspace{0.15cm} 2 \cdot 1/2 \cdot \varepsilon \cdot {\rm log_2 } \hspace{0.15cm}\frac{\varepsilon}{1/2 }+  
 
2 \cdot 1/2 \cdot (1- \varepsilon)  \cdot {\rm log_2 } \hspace{0.15cm}\frac{1- \varepsilon}{1/2 }
 
2 \cdot 1/2 \cdot (1- \varepsilon)  \cdot {\rm log_2 } \hspace{0.15cm}\frac{1- \varepsilon}{1/2 }
 
\varepsilon \cdot {\rm ld } \hspace{0.15cm}2  - \varepsilon \cdot {\rm log_2 } \hspace{0.15cm} \frac{1}{\varepsilon }+  (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm} 2 - (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{1- \varepsilon}</math>
 
\varepsilon \cdot {\rm ld } \hspace{0.15cm}2  - \varepsilon \cdot {\rm log_2 } \hspace{0.15cm} \frac{1}{\varepsilon }+  (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm} 2 - (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{1- \varepsilon}</math>
::<math>\Rightarrow \hspace{0.3cm} C \hspace{0.15cm}  =  \hspace{0.15cm}  1 - H_{\rm bin}(\varepsilon). </math>
+
:::<math>\Rightarrow \hspace{0.3cm} C \hspace{0.15cm}  =  \hspace{0.15cm}  1 - H_{\rm bin}(\varepsilon). </math>
  
*The ''binary entropy function'' is used here:
+
*Here,&nbsp; the&nbsp; "binary entropy function"&nbsp; is used:
  
 
::<math>H_{\rm bin}(\varepsilon) =  \varepsilon \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{\varepsilon}+  
 
::<math>H_{\rm bin}(\varepsilon) =  \varepsilon \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{\varepsilon}+  
 
(1- \varepsilon)  \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{1- \varepsilon}\hspace{0.05cm}.</math>
 
(1- \varepsilon)  \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{1- \varepsilon}\hspace{0.05cm}.</math>
  
The following right graph shows the BSC channel capacity depending on the corruption probability&nbsp; $\varepsilon$. On the left, for comparison, the binary entropy function is shown, which has already been defined in the chapter&nbsp; [[Information_Theory/Discrete_Memoryless_Sources#Binary_entropy_function|"memoryless sources"]]&nbsp; of the book "Information Theory".<br>
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The right graph shows the BSC channel capacity depending on the falsificaion probability&nbsp; $\varepsilon$.&nbsp; On the left,&nbsp; for comparison,&nbsp; the binary entropy function is shown,&nbsp; which has already been defined in the chapter&nbsp; [[Information_Theory/Discrete_Memoryless_Sources#Binary_entropy_function|$\text{Discrete Memoryless Sources}$]]&nbsp; of the book&nbsp; "Information Theory".&nbsp; <br>
 +
[[File:P ID2379 KC T 1 7 S2 v2.png|right|frame|Channel capacity of the BSC model|class=fit]]
 +
One can see from this representation:
 +
*The falsificaion probability&nbsp; $\varepsilon$&nbsp; leads to the channel capacity&nbsp; $C(\varepsilon)$.&nbsp; According to the&nbsp; [[Channel_Coding/Information_Theoretical_Limits_of_Channel_Coding#Channel_coding_theorem_and_channel_capacity |$\text{channel coding theorem}$]]&nbsp; error-free decoding is only possible if the code rate&nbsp; $R \le C(\varepsilon)$.
  
[[File:P ID2379 KC T 1 7 S2 v2.png|center|frame|Kanalkapazität des BSC–Modells|class=fit]]
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*With&nbsp; $\varepsilon = 10\%$,&nbsp; error-free decoding is impossible&nbsp; if the code rate&nbsp; $R > 0.531$ &nbsp; $($because:&nbsp; $C(0.1) = 0.531)$.  
One can see from this representation:
 
*The corruption probability&nbsp; $\varepsilon$&nbsp; leads to the channel capacity $C(\varepsilon)$. According to the&nbsp; [[Channel_Coding/Information_Theoretical_Limits_of_Channel_Coding#Channel_coding_theorem_and_channel_capacity |"channel coding theorem"]]&nbsp; error-free decoding is only possible if the code rate $R$ is not greater than&nbsp; $C(\varepsilon)$.
 
  
 +
*With&nbsp; $\varepsilon = 50\%$,&nbsp; error-free decoding is impossible even if the code rate is arbitrarily small &nbsp; $($because:&nbsp; $C(0.5) = 0)$.<br>
  
*With&nbsp; $\varepsilon = 10\%$&nbsp; error-free decoding is impossible because of&nbsp; $C(0.1) = 0.531$&nbsp; if the code rate&nbsp; $R > 0.531$&nbsp;. At 50&ndash;percent corruption, error-free decoding is impossible even if the code rate is arbitrarily small: &nbsp; $C(0.5) = 0$ .<br>
+
*From an information theory point of view&nbsp; $\varepsilon = 1$&nbsp; $($inversion of all bits$)$&nbsp; is equivalent to&nbsp; $\varepsilon = 0$&nbsp; $($"error-free transmission"$)$.  
  
*From an information theory point of view&nbsp; $\varepsilon = 1$&nbsp; (inversion of all bits) is equivalent to&nbsp; $\varepsilon = 0$&nbsp; (error-free transmission). Similarly&nbsp; $\varepsilon = 0.9$&nbsp; is equivalent to&nbsp; $\varepsilon = 0.1$. Error-free decoding is achieved here by swapping the zeros and ones, i.e. by a so-called <i>mapping</i>.<br>
+
*Error-free decoding is achieved here by swapping the zeros and ones, i.e. by a so-called&nbsp; "mapping".
  
 +
*Similarly&nbsp; $\varepsilon = 0.9$&nbsp; is equivalent to&nbsp; $\varepsilon = 0.1$.&nbsp; <br>
 +
<br clear=all>
 
== Channel capacity of the AWGN model==
 
== Channel capacity of the AWGN model==
 
<br>
 
<br>
 +
We now consider the&nbsp; [[Digital_Signal_Transmission/System_Components_of_a_Baseband_Transmission_System#Transmission_channel_and_interference|$\text{AWGN channel}$]]&nbsp; ("Additive White Gaussian Noise").
 
[[File:P ID2372 KC T 1 7 S3a.png|right|frame|AWGN channel model|class=fit]]
 
[[File:P ID2372 KC T 1 7 S3a.png|right|frame|AWGN channel model|class=fit]]
We now consider the&nbsp; [[Digital_Signal_Transmission/System_Components_of_a_Baseband_Transmission_System#Transmission_channel_and_interference|"AWGN channel"]]&nbsp; (<i>Additive White Gaussian Noise</i>&nbsp;). Here, for the output signal&nbsp; $y = x + n$, where&nbsp; $n$&nbsp; describes a&nbsp; [[Theory_of_Stochastic_Signals/Gaussian_Distributed_Random_Variables|"Gaussian distributed random variable"]]&nbsp; and it applies to their expected values (moments):
 
:$${\rm E}[n] = 0,\hspace{1cm} {\rm E}[n^2] = P_n.$$
 
  
Thus, regardless of the input signal&nbsp; $x$&nbsp; (analog or digital), there is always a continuous value output signal&nbsp; $y$, and in the&nbsp; [[Channel_Coding/Information_Theoretical_Limits_of_Channel_Coding#Channel_coding_theorem_and_channel_capacity|"equation for mutual information"]]&nbsp; is to be used&nbsp; $M_y \to\infty$&nbsp;.<br>
+
Here,&nbsp; for the output signal&nbsp; $y = x + n$,&nbsp; where&nbsp; $n$&nbsp; describes a&nbsp; [[Theory_of_Stochastic_Signals/Gaussian_Distributed_Random_Variables|$\text{Gaussian distributed random variable}$]]&nbsp; and it applies to their expected values&nbsp; ("moments"):
 +
 +
#&nbsp;${\rm E}[n] = 0,$
 +
#&nbsp;${\rm E}[n^2] = P_n.$
 +
 
 +
 
 +
Thus,&nbsp; regardless of the input signal&nbsp; $x$&nbsp; $($analog or digital$)$,&nbsp; there is always a continuous-valued output signal&nbsp; $y$,&nbsp; and in the&nbsp; [[Channel_Coding/Information_Theoretical_Limits_of_Channel_Coding#Channel_coding_theorem_and_channel_capacity|$\text{equation for mutual information}$]]&nbsp; is to be used:&nbsp;  
 +
:$$M_y \to\infty.$$
  
The calculation of the channel capacity for the AWGN channel is given here only in keywords. The exact derivation can be found in the fourth main chapter "Discrete Value Information Theory" of the book&nbsp; "[[Information_theory]]".
+
The calculation of the AWGN channel capacity is given here only in keywords.&nbsp; The exact derivation can be found in the fourth main chapter&nbsp; "Discrete Value Information Theory"&nbsp; of the textbook&nbsp; [[Information_theory|$\text{Information Theory}$]].
*The input quantity&nbsp; $x$&nbsp; optimized with respect to maximum mutual information will certainly be value continuous, that is, for the AWGN channel, in addition to&nbsp; $M_y \to\infty$&nbsp; also&nbsp; $M_x \to\infty$ holds.
+
*The input quantity&nbsp; $x$&nbsp; optimized with respect to maximum mutual information will certainly be continuous-valued,&nbsp; that is,&nbsp; for the AWGN channel in addition to &nbsp; $M_y \to\infty$ &nbsp; also holds &nbsp; $M_x \to\infty$.
  
*While for discrete value input optimization is to be done over all&nbsp; ${\rm Pr}(x_i)$&nbsp; now optimization is done using the&nbsp; [[Theory_of_Stochastic_Signals/Gaussian_Distributed_Random_Variables#Probability_density_function_. E2.80.93_Cumulative_density_function| "PDF"]]&nbsp; $f_x(x)$ of the input signal under the constraint&nbsp; [[Digital_Signal_Transmission/Optimization_of_Baseband_Transmission_Systems#Power_and_peak_limitation| "Power Limitation"]]:
+
*While for discrete-valued input optimization is to be done over all probabilities&nbsp; ${\rm Pr}(x_i)$&nbsp; now optimization is done using the&nbsp; [[Theory_of_Stochastic_Signals/Gaussian_Distributed_Random_Variables#Probability_density_function_.E2.80.93_Cumulative_density_function|$\text{probability density function&nbsp; $\rm (PDF)$}$]]&nbsp; $f_x(x)$&nbsp; of the input signal under the constraint&nbsp; [[Digital_Signal_Transmission/Optimization_of_Baseband_Transmission_Systems#Power_and_peak_limitation|$\text{power limitation}$]]:
  
 
::<math>C = \max_{f_x(x)} \hspace{0.1cm} I(x; y)\hspace{0.05cm},\hspace{0.3cm}{\rm where \hspace{0.15cm} must \hspace{0.15cm} apply} \text{:}\hspace{0.15cm} {\rm E} \left [ x^2 \right ] \le P_x  \hspace{0.05cm}.</math>
 
::<math>C = \max_{f_x(x)} \hspace{0.1cm} I(x; y)\hspace{0.05cm},\hspace{0.3cm}{\rm where \hspace{0.15cm} must \hspace{0.15cm} apply} \text{:}\hspace{0.15cm} {\rm E} \left [ x^2 \right ] \le P_x  \hspace{0.05cm}.</math>
  
*The optimization also yields a Gaussian distribution for the input PDF &nbsp; &#8658; &nbsp; $x$,&nbsp; $n$&nbsp; and&nbsp; $y$&nbsp; are Gaussian distributed according to the density functions&nbsp; $f_x(x)$,&nbsp; $f_n(n)$&nbsp; and&nbsp; $f_y(y)$. We name the corresponding powers&nbsp; $P_x$,&nbsp; $P_n$&nbsp; and&nbsp; $P_y$.<br>
+
*The optimization also yields a Gaussian distribution for the input PDF &nbsp; &#8658; &nbsp; $x$,&nbsp; $n$&nbsp; and&nbsp; $y$&nbsp; are Gaussian distributed according to the probability density functions&nbsp; $f_x(x)$, &nbsp; $f_n(n)$ &nbsp; and &nbsp; $f_y(y)$.&nbsp; We designate the corresponding powers&nbsp; $P_x$,&nbsp; $P_n$&nbsp; and&nbsp; $P_y$.<br>
  
*After longer calculation one gets for the channel capacity using the <i>binary logarithm</i>&nbsp; $\log_2(\cdot)$ &ndash; again with the pseudo unit "bit/channel use":
+
*After longer calculation one gets for the channel capacity using the&nbsp; "binary logarithm"&nbsp; $\log_2(\cdot)$&nbsp; &ndash;&nbsp; again with the pseudo-unit&nbsp; "bit/channel use":
  
 
::<math>C = {\rm log_2 } \hspace{0.15cm} \sqrt{\frac{P_y}{P_n }} = {\rm log_2 } \hspace{0.15cm} \sqrt{\frac{P_x + P_n}{P_n }} =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + \frac{P_x}{P_n } \right )\hspace{0.05cm}.</math>
 
::<math>C = {\rm log_2 } \hspace{0.15cm} \sqrt{\frac{P_y}{P_n }} = {\rm log_2 } \hspace{0.15cm} \sqrt{\frac{P_x + P_n}{P_n }} =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + \frac{P_x}{P_n } \right )\hspace{0.05cm}.</math>
  
*If&nbsp; $x$ describes a&nbsp; discrete-time signal with symbol rate&nbsp; $1/T_{\rm S}$, it must be bandlimited to&nbsp; $B = 1/(2T_{\rm S})$&nbsp; bandlimited, and the same bandwidth&nbsp; $B$&nbsp; must be applied to the noise signal&nbsp; $n$&nbsp; &#8658; &nbsp; "noise bandwidth":
+
*If&nbsp; $x$&nbsp; describes a&nbsp; discrete-time signal with symbol rate&nbsp; $1/T_{\rm S}$,&nbsp; it must be bandlimited to &nbsp; $B = 1/(2T_{\rm S})$, &nbsp; and the same bandwidth&nbsp; $B$&nbsp; must be applied to the noise signal&nbsp; $n$&nbsp; &#8658; &nbsp; "noise bandwidth":
  
 
::<math>P_X  = \frac{E_{\rm S}}{T_{\rm S} } \hspace{0.05cm}, \hspace{0.4cm} P_N  = \frac{N_0}{2T_{\rm S} }\hspace{0.05cm}. </math>
 
::<math>P_X  = \frac{E_{\rm S}}{T_{\rm S} } \hspace{0.05cm}, \hspace{0.4cm} P_N  = \frac{N_0}{2T_{\rm S} }\hspace{0.05cm}. </math>
  
*Thus, the AWGN channel capacity can also be expressed by the&nbsp; '''transmit energy per symbol''' $(E_{\rm S})$&nbsp; and the&nbsp; '''noise power density'''&nbsp; $(N_0)$:
+
*Thus, the AWGN channel capacity can also be expressed by the&nbsp; &raquo;transmitted energy per symbol'''&laquo;&nbsp; $(E_{\rm S})$&nbsp; and the&nbsp; &raquo;'''noise power density'''&laquo;&nbsp; $(N_0)$:
  
 
::<math>C =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + {2 E_{\rm S}}/{N_0 } \right )\hspace{0.05cm}, \hspace{1.9cm}
 
::<math>C =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + {2 E_{\rm S}}/{N_0 } \right )\hspace{0.05cm}, \hspace{1.9cm}
\text {Unit:}\hspace{0.3cm} \frac{\rm bit}{\rm channel\:use}\hspace{0.05cm}.</math>
+
\text {unit:}\hspace{0.3cm} \frac{\rm bit}{\rm channel\:use}\hspace{0.05cm}.</math>
*The following equation gives the channel capacity per unit time (denoted by $^{\star})$:
+
*The following equation gives the channel capacity per unit time&nbsp; $($denoted by $^{\star})$:
 
::<math>C^{\star} = \frac{C}{T_{\rm S} } =    B \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + {2  E_{\rm S}}/{N_0 } \right )\hspace{0.05cm}, \hspace{0.8cm}
 
::<math>C^{\star} = \frac{C}{T_{\rm S} } =    B \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + {2  E_{\rm S}}/{N_0 } \right )\hspace{0.05cm}, \hspace{0.8cm}
\text {Unit:} \hspace{0.3cm} \frac{\rm bit}{\rm time\:unit}\hspace{0.05cm}.</math><br>
+
\text {unit:} \hspace{0.3cm} \frac{\rm bit}{\rm time\:unit}\hspace{0.05cm}.</math><br>
  
 
{{GraueBox|TEXT=   
 
{{GraueBox|TEXT=   
 
$\text{Example 1:}$&nbsp;   
 
$\text{Example 1:}$&nbsp;   
*Für&nbsp; $E_{\rm S}/N_0  = 7.5$ &nbsp; &#8658; &nbsp; $10 \cdot \lg \, E_{\rm S}/N_0 = 8.75 \, \rm dB$&nbsp; erhält man die Kanalkapazität&nbsp; $C =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm} (16) = 2 \, \rm  bit/channel\:use$.
+
*For&nbsp; $E_{\rm S}/N_0  = 7.5$ &nbsp; &#8658; &nbsp; $10 \cdot \lg \, E_{\rm S}/N_0 = 8.75 \, \rm dB$&nbsp; the channel capacity is&nbsp;  
*For a channel with the (physical) bandwidth&nbsp; $B = 4 \, \rm kHz$, which corresponds to the sampling rate&nbsp; $f_{\rm A} = 8\, \rm kHz$&nbsp; also&nbsp; $C^\star = 16 \, \rm kbit/s$.}}<br>
+
:$$C =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm} (16) = 2 \, \rm  bit/channel\:use.$$
 +
 +
*For a channel with the&nbsp; (physical)&nbsp; bandwidth&nbsp; $B = 4 \, \rm kHz$,&nbsp; which corresponds to the sampling rate&nbsp; $f_{\rm A} = 8\, \rm kHz$:&nbsp;  
 +
:$$C^\star = 16 \, \rm kbit/s.$$}}
  
However, a comparison of different coding methods at constant&nbsp; $E_{\rm S}$&nbsp; (energy ''per transmitted symbol''&nbsp;) is not fair. Rather, for this comparison, the energy&nbsp; $E_{\rm B}$&nbsp; ''per useful bit''&nbsp; should be fixed. The following relationships apply:
+
 
 +
*However,&nbsp; a comparison of different encoding methods at constant&nbsp; "energy per transmitted symbol" &nbsp; &rArr; &nbsp; $E_{\rm S}$&nbsp; is not fair.&nbsp;
 +
 
 +
*Rather,&nbsp; for this comparison,&nbsp; the&nbsp; "energy per source bit" &nbsp; &rArr; &nbsp; $E_{\rm B}$&nbsp; should be fixed.&nbsp; The following relationships apply:
  
 
::<math>E_{\rm S} = R \cdot E_{\rm B}  \hspace{0.3cm} \Rightarrow \hspace{0.3cm}
 
::<math>E_{\rm S} = R \cdot E_{\rm B}  \hspace{0.3cm} \Rightarrow \hspace{0.3cm}
Line 147: Line 171:
 
$\text{Channel Coding Theorem for the AWGN channel:}$&nbsp;  
 
$\text{Channel Coding Theorem for the AWGN channel:}$&nbsp;  
  
Error-free decoding $($at infinitely long blocks &nbsp; &#8658; &nbsp; $n \to \infty)$&nbsp; is always possible if the code rate&nbsp; $R$&nbsp; is smaller than the channel capacity&nbsp; $C$:
+
*Error-free decoding $($at infinitely long blocks &nbsp; &#8658; &nbsp; $n \to \infty)$&nbsp; is always possible if the code rate&nbsp; $R$&nbsp; is smaller than the channel capacity&nbsp; $C$:
  
 
::<math>R < C =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 +2 \cdot R\cdot E_{\rm B}/{N_0 } \right )\hspace{0.05cm}.</math>
 
::<math>R < C =  {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 +2 \cdot R\cdot E_{\rm B}/{N_0 } \right )\hspace{0.05cm}.</math>
  
For each code rate&nbsp $R$&nbsp; the required&nbsp; $E_{\rm B}/N_0$&nbsp; of the AWGN channel can thus be determined so that error-free decoding is just possible. One obtains for the limiting case&nbsp; $R = C$:
+
*For each code rate&nbsp; $R$&nbsp; the required&nbsp; $E_{\rm B}/N_0$&nbsp; of the AWGN channel can thus be determined so that error-free decoding is just possible.  
 +
 
 +
*One obtains for the limiting case&nbsp; $R = C$:
  
 
::<math>{E_{\rm B} }/{N_0} >  \frac{2^{2R}-1}{2R } \hspace{0.05cm}.</math>}}
 
::<math>{E_{\rm B} }/{N_0} >  \frac{2^{2R}-1}{2R } \hspace{0.05cm}.</math>}}
  
  
The graph summarizes the result, with the ordinate&nbsp; $R$&nbsp; plotted on a linear scale and the abscissa&nbsp; $E_{\rm B}/{N_0 }$&nbsp; plotted logarithmically.
+
The graph summarizes the result,&nbsp; with the ordinate&nbsp; $R$&nbsp; plotted on a linear scale and the abscissa&nbsp; $E_{\rm B}/{N_0 }$&nbsp; plotted logarithmically.
[[File:P ID2373 KC T 1 7 S3b v3.png|right|frame|Channel capacity of the AWGN channel|class=fit]]  
+
[[File:EN_KC_T_1_7_S3b_v2.png|right|frame|AWGN channel capacity |class=fit]]  
 
*Error-free coding is not possible outside the blue area.  
 
*Error-free coding is not possible outside the blue area.  
*The blue limit curve indicates the channel capacity&nbsp; $C$&nbsp; of the AWGN channel.<br>
 
<br clear=all>
 
From this graph and the above equation, the following can be deduced:
 
*Channel capacity&nbsp; $C$&nbsp; increases somewhat less than linearly with&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 $&nbsp;. In the graph, some selected function values are indicated as blue crosses.<br>
 
  
*If&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 < -1.59 \, \rm dB$, error-free decoding is impossible in principle. If the code rate&nbsp; $R = 0.5$, then&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 > 0 \, \rm dB$&nbsp; must be &nbsp;&nbsp;&#8658;&nbsp; $E_{\rm B} > N_0$.<br>
+
*The blue limit curve indicates the AWGN channel capacity&nbsp; $C$.<br>
  
*Für alle binären Codes gilt per se&nbsp; $0 < R &#8804; 1$. Only with <i>non-binary</i> codes code rates&nbsp; $R > 1$&nbsp; are possible. For example, the maximum possible code rate of a quaternary code&nbsp; $R = \log_2 \, M_y = \log_2 \, 4 = 2$.<br>
 
  
*All one-dimensional modulation types &ndash; i.e., those methods that use only the in-phase&ndash; or only the quadrature component such as&nbsp; [[Digital_Signal_Transmission/Carrier_Frequency_Systems_with_Coherent_Demodulation#On.E2.80.93off_keying_.282.E2.80.93ASK.29|"2&ndash;ASK"]],&nbsp;  
+
From this graph and the above equation,&nbsp; the following can be deduced:
[[Digital_Signal_Transmission/Carrier_Frequency_Systems_with_Coherent_Demodulation#Binary_phase_shift_keying_.28BPSK.29 |"BPSK"]]&nbsp; and&nbsp; [[Digital_Signal_Transmission/Carrier_Frequency_Systems_with_Non-Coherent_Demodulation#Non-Coh.C3.A4rente_Demodulation_of_bin.C3.A4rer_FSK_.282.E2.80.93FSK.29|"2&ndash;FSK"]]&nbsp; &ndash; must be in the blue area of the present graphic.<br>
+
#Channel capacity&nbsp; $C$&nbsp; increases with&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 $&nbsp; somewhat less than linearly.&nbsp; In the graph,&nbsp; some selected function values are indicated as blue crosses.<br>
*As shown in the chapter&nbsp; [[Information_Theory/AWGN_Channel_Capacity_for_Discrete_Input#Maximum_code_rate_for_QAM_structures|"Maximum code rate for QAM&ndash;structures"]]&nbsp; of the book "Information Theory" is shown, there is a "friendlier" limit curve for two-dimensional modulation types such as the&nbsp; [[Modulation_Methods/Quadrature_Amplitude_Modulation|"Quadrature&ndash;Amplitude Modulation"]]&nbsp;.   
+
#If&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 < -1.59 \, \rm dB$,&nbsp; error-free decoding is impossible in principle.&nbsp; If the code rate&nbsp; $R = 0.5$,&nbsp; then&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 > 0 \, \rm dB$&nbsp; must be &nbsp;&nbsp;&#8658;&nbsp; $E_{\rm B} > N_0$.<br>
 +
#For all binary codes holds per se&nbsp; $0 < R &#8804; 1$. Only with non-binary codes&nbsp; &rArr; &nbsp; rates&nbsp; $R > 1$&nbsp; are possible.&nbsp; For example,&nbsp; the maximum possible code rate of a quaternary code:&nbsp; $R = \log_2 \, M_y = \log_2 \, 4 = 2$.<br>
 +
#All one-dimensional modulation types &ndash; i.e., those methods that use only the in-phase&ndash; or only the quadrature component such as&nbsp; [[Digital_Signal_Transmission/Carrier_Frequency_Systems_with_Coherent_Demodulation#On.E2.80.93off_keying_.282.E2.80.93ASK.29|$\text{2&ndash;ASK}$]],&nbsp; [[Digital_Signal_Transmission/Carrier_Frequency_Systems_with_Coherent_Demodulation#Binary_phase_shift_keying_.28BPSK.29 |$\text{BPSK}$]]&nbsp; and&nbsp; [[Digital_Signal_Transmission/Carrier_Frequency_Systems_with_Non-Coherent_Demodulation#Non-coherent_demodulation_of_binary_FSK_.282.E2.80.93FSK.29|$\text{2&ndash;FSK}$]]&nbsp; must be in the blue area of the present graphic.<br>
 +
#As shown in the chapter&nbsp; [[Information_Theory/AWGN_Channel_Capacity_for_Discrete_Input#Maximum_code_rate_for_QAM_structures|"Maximum code rate for QAM structures"]],&nbsp; there is a&nbsp; "friendlier"&nbsp; limit curve for two-dimensional modulation types such as the&nbsp; [[Modulation_Methods/Quadrature_Amplitude_Modulation|"Quadrature Amplitude Modulation"]].   
  
 
== AWGN channel capacity for binary input signals ==
 
== AWGN channel capacity for binary input signals ==
 
<br>
 
<br>
In this book we restrict ourselves mainly to binary codes, that is, to the Galois field&nbsp; ${\rm GF}(2^n)$. With this
+
In this book we restrict ourselves mainly to binary codes,&nbsp; that is,&nbsp; to the Galois field&nbsp; ${\rm GF}(2^n)$.&nbsp; With this
[[File:P ID2374 KC T 1 7 S4a.png|right|frame|Conditional density functions for AWGN channel and binary input]]
+
[[File:P ID2374 KC T 1 7 S4a.png|right|frame|Conditional PDFs for AWGN channel and binary input]]
*irstly, the code rate is limited to the range&nbsp; $R &#8804; 1$&nbsp; begrenzt,<br>
+
 
*secondly also for&nbsp; $R &#8804; 1$&nbsp; not the whole blue region is available (see previous page).
+
*firstly,&nbsp; the code rate is limited to the range&nbsp; $R &#8804; 1$,<br>
 +
 
 +
*secondly,&nbsp; also for&nbsp; $R &#8804; 1$&nbsp; not the whole blue region is available&nbsp; (see previous section).
  
  
The now valid region results from the&nbsp; [[Channel_Coding/Information_Theoretical_Limits_of_Channel_Coding#Channel_coding_theorem_and_channel_capacity|"general equation"]]&nbsp; of mutual information by
+
*The now valid region results from the&nbsp; [[Channel_Coding/Information_Theoretical_Limits_of_Channel_Coding#Channel_coding_theorem_and_channel_capacity|$\text{general equation}$]]&nbsp; of mutual information by
*the parameters&nbsp; $M_x = 2$&nbsp; and&nbsp; $M_y \to \infty$,<br>
+
#the parameters&nbsp; $M_x = 2$&nbsp; and&nbsp; $M_y \to \infty$,<br>
*bipolar signaling &nbsp; &#8658; &nbsp; $x=0$ &nbsp; &#8594; &nbsp; $\tilde{x} = +1$&nbsp; and&nbsp; $x=1$ &nbsp; &#8594; &nbsp; $\tilde{x} = -1$,<br>
+
#bipolar signaling &nbsp; &#8658; &nbsp; $x=0$ &nbsp; &#8594; &nbsp; $\tilde{x} = +1$&nbsp; and&nbsp; $x=1$ &nbsp; &#8594; &nbsp; $\tilde{x} = -1$,<br>
*the transition from conditional probabilities&nbsp; ${\rm Pr}(\tilde{x}_i)$&nbsp; to conditional probability density functions,<br>
+
#the transition from conditional probabilities&nbsp; ${\rm Pr}(\tilde{x}_i)$&nbsp; to conditional probability density functions,<br>
*Replace the sum with an integration.<br><br>
+
#replace the sum with an integration.<br><br>
  
The optimization of the source leads to equally probable symbols:
+
*The optimization of the source leads to equally probable symbols:
  
 
::<math>{\rm Pr}(\tilde{x} = +1) = {\rm Pr}(\tilde{x} = -1) = 1/2  \hspace{0.05cm}. </math>
 
::<math>{\rm Pr}(\tilde{x} = +1) = {\rm Pr}(\tilde{x} = -1) = 1/2  \hspace{0.05cm}. </math>
  
This gives for the maximum of the mutual information, i.e. for the channel capacity:  
+
*This gives for the maximum of the mutual information,&nbsp; i.e. for the channel capacity:  
  
 
::<math>C \hspace{-0.15cm} = {1}/{2} \cdot \int_{-\infty }^{+ \infty}
 
::<math>C \hspace{-0.15cm} = {1}/{2} \cdot \int_{-\infty }^{+ \infty}
Line 198: Line 224:
 
\hspace{0.05cm}.</math>
 
\hspace{0.05cm}.</math>
  
The integral cannot be solved in mathematical closed form, but can only be evaluated numerically.  
+
The integral cannot be solved in mathematical closed form, but can only be evaluated numerically.
*The green curve shows the result.  
+
[[File:EN_KC_T_1_7_S4b_v2.png|right|frame|AWGN channel capacity for binary input signals |class=fit]]
*The blue curve gives for comparison the channel capacity for Gaussian distributed input signals derived on the last page.
+
 +
#The green curve shows the result.  
 +
#The blue curve gives for comparison the channel capacity for Gaussian distributed input signals derived in the last section.
 
   
 
   
[[File:P ID2375 KC T 1 7 S4b v3.png|right|frame|AWGN channel capacity for binary input signals|class=fit]]
 
 
  
 
It can be seen:
 
It can be seen:
*For&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 < 0 \, \rm dB$&nbsp; the two capacitance curves differ only slightly.  
+
*For&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 < 0 \, \rm dB$&nbsp; the two capacitance curves differ only slightly.
*So, for binary bipolar input, compared to the optimum (Gaussian input), the characteristic&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0$&nbsp; only needs to be increased by about&nbsp; $0.1 \, \rm dB$&nbsp; to also allow the code rate&nbsp; $R = 0.5$&nbsp;.<br>
+
 +
*So,&nbsp; for binary bipolar input,&nbsp; compared to the optimum (Gaussian) input,&nbsp; the characteristic&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0$&nbsp; only needs to be increased by about&nbsp; $0.1 \, \rm dB$&nbsp; to also allow the code rate&nbsp; $R = 0.5$.<br>
  
*From&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 \approx6 \, \rm dB$&nbsp; the capacity&nbsp; $C = 1 \, \rm bit/channel\:use$&nbsp; of the AWGN channel for binary input is (almost) reached.  
+
*From&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 \approx6 \, \rm dB$&nbsp; the capacity&nbsp; $C = 1 \, \rm bit/channel\:use$&nbsp; of the AWGN channel for binary input is almost reached.
 +
 
*In between, the limit curve is approximately exponentially increasing.
 
*In between, the limit curve is approximately exponentially increasing.
 
<br clear=all>
 
<br clear=all>
 
== Common channel codes versus channel capacity ==
 
== Common channel codes versus channel capacity ==
 
<br>
 
<br>
Now it shall be shown to what extent established channel codes approximate the BPSK channel capacity (green curve). In the following graph the rate&nbsp; $R=k/n$&nbsp; of these codes or the capacity&nbsp; $C$&nbsp; (with the additional pseudo&ndash;unit "bit/channel use") is plotted as ordinate. Further, it is assumed:
+
Now it shall be shown to what extent established channel codes approximate the BPSK channel capacity&nbsp; (green curve). &nbsp; In the following graph the rate &nbsp; $R=k/n$ &nbsp; of these codes or the capacity &nbsp; $C$ &nbsp; (with the additional pseudo&ndash;unit "bit/channel use")&nbsp; is plotted as ordinate.  
*the AWGN&ndash;channel, denoted by&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0$&nbsp; in dB, and<br>
+
[[File:EN_KC_T_1_7_S5a.png|right|frame|Rates and required &nbsp;$E_{\rm B}/{N_0}$&nbsp; of different channel codes]]
 
 
*for the codes marked by crosses, a bit error rate (BER) of&nbsp; $10^{-5}$.<br>
 
 
 
 
 
[[File:EN_Inf_T_4_3_S6a_v2.png|right|frame|Rates and required &nbsp;$E_{\rm B}/{N_0}$&nbsp; of different channel codes]]
 
  
 +
Further,&nbsp; it is assumed:
 +
*the AWGN&ndash;channel,&nbsp; denoted by&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0$&nbsp; in dB,&nbsp; and<br>
  
 +
*bit error rate&nbsp; $\rm BER=10^{-5}$ for all codes marked by crosses.<br>
  
 
   
 
   
 
$\text{Please note:}$&nbsp;  
 
$\text{Please note:}$&nbsp;  
*The channel capacity curves always apply to&nbsp; $n \to \infty$&nbsp; and&nbsp; $\rm BER \to 0$&nbsp;.  
+
#The channel capacity curves always apply to&nbsp; $n \to \infty$&nbsp; and&nbsp; $\rm BER \to 0$&nbsp;.  
*If one would apply this strict requirement "error-free" also to the considered channel codes of finite code length&nbsp; $n$&nbsp;, this would always require&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 \to \infty$&nbsp;.  
+
#If one would apply this strict requirement&nbsp; "error-free"&nbsp; also to the considered channel codes of finite code length&nbsp; $n$,&nbsp; this would always require&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 \to \infty$&nbsp;.  
*But this is an academic problem of little practical significance. For&nbsp; $\rm BER = 10^{-10}$&nbsp; a qualitatively and also quantitatively similar graph would result.<br>
+
#But this is an academic problem of little practical significance.&nbsp; For&nbsp; $\rm BER = 10^{-10}$&nbsp; a qualitatively and also quantitatively similar graph would result.<br>
 +
#For convolutional codes,&nbsp; the third identifier parameter has a different meaning than for block codes.&nbsp; For example,&nbsp; $\text{CC (2, 1, 32)}$&nbsp; indicates the memory&nbsp; $m = 32$<br>
 
<br clear=all>
 
<br clear=all>
The following are some explanations of the data taken from the lecture [Liv10]<ref name='Liv10'>Liva, G.: Channel Coding. Lecture manuscript, Chair of Communications Engineering, TU Munich and DLR Oberpfaffenhofen, 2010.</ref>:
+
The following are some&nbsp; &raquo;'''explanations of the data taken from the lecture [Liv10]<ref name='Liv10'>Liva, G.: Channel Coding. Lecture manuscript, Chair of Communications Engineering, TU Munich and DLR Oberpfaffenhofen, 2010.</ref>'''&laquo;:
*The points&nbsp; $\rm A$,&nbsp; $\rm B$&nbsp; and&nbsp; $\rm C$&nbsp; mark&nbsp; [[Channel_Coding/Examples_of_Binary_Block_Codes#Hamming_Codes|"Hamming codes"]]&nbsp; of different rate. They all require for&nbsp; $\rm BER = 10^{-5}$&nbsp; more than&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 = 8 \, \rm dB$.
+
#The points&nbsp; $\rm A$,&nbsp; $\rm B$&nbsp; and&nbsp; $\rm C$&nbsp; mark&nbsp; [[Channel_Coding/Examples_of_Binary_Block_Codes#Hamming_Codes|$\text{Hamming codes}$]]&nbsp; of different rate.&nbsp; They all require for&nbsp; $\rm BER = 10^{-5}$&nbsp; more than&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 = 8 \, \rm dB$.
*The marker&nbsp; $\rm D$&nbsp; denotes the binary&nbsp; [https://en.wikipedia.org/wiki/Binary_Golay_code "Golay code"]&nbsp; with rate&nbsp; $1/2$&nbsp; and the marker&nbsp; $\rm E$&nbsp; denotes a&nbsp; [https://en.wikipedia.org/wiki/Reed-Muller_code "Reed&ndash;Muller code"]. This very low rate code was used as early as 1971 on the Mariner 9 spacecraft.
+
#$\rm D$&nbsp; denotes the binary&nbsp; [https://en.wikipedia.org/wiki/Binary_Golay_code $\text{Golay code}$]&nbsp; with rate&nbsp; $1/2$&nbsp; and&nbsp; $\rm E$&nbsp; denotes a&nbsp; [https://en.wikipedia.org/wiki/Reed-Muller_code $\text{Reed&ndash;Muller code}$].&nbsp; This very low rate code was used 1971 on the Mariner 9 spacecraft.
*The&nbsp; [[Channel_Coding/Definition_and_Properties_of_Reed-Solomon_Codes|"Reed&ndash;Solomon codes"]]&nbsp; (RS codes) are discussed in detail in the second main chapter. Marked by&nbsp; $\rm F$&nbsp; is a high rate RS code&nbsp; $(R = 223/255 > 0.9)$&nbsp; and a required&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 < 6 \, \rm dB$.  
+
#Marked by&nbsp; $\rm F$&nbsp; is a high rate&nbsp; [[Channel_Coding/Definition_and_Properties_of_Reed-Solomon_Codes|$\text{Reed&ndash;Solomon codes}$]] &nbsp; $(R = 223/255 > 0.9)$ &nbsp;and a required&nbsp; $10 \cdot \lg \, E_{\rm B}/N_0 < 6 \, \rm dB$.  
*The markers&nbsp; $\rm G$&nbsp; and&nbsp; $\rm H$&nbsp; denote exemplary&nbsp; [[Channel_Coding/Basics_of_Convolutional_Coding|"convolutional codes"]]&nbsp; medium rate. The code&nbsp; $\rm G$&nbsp; was used as early as 1972 on the Pioneer10 mission.
+
#The markers&nbsp; $\rm G$&nbsp; and&nbsp; $\rm H$&nbsp; denote exemplary&nbsp; [[Channel_Coding/Basics_of_Convolutional_Coding|$\text{convolutional codes}$]]&nbsp; medium rate. The code&nbsp; $\rm G$&nbsp; was used as early as 1972 on the Pioneer10 mission.
*The channel coding of the Voyager&ndash;mission in the late 1970s is marked&nbsp; $\rm I$&nbsp;. It is the concatenation of a&nbsp; $\text{(2, 1, 7)}$&ndash;convolutional code with a Reed&ndash;Solomon code, as described in the fourth main chapter.<br><br>
+
#The channel coding of the Voyager&ndash;mission in the late 1970s is marked by&nbsp; $\rm I$.&nbsp; It is the concatenation of a&nbsp; $\text{CC (2, 1, 7)}$&nbsp; with a&nbsp; [[Channel_Coding/Definition_and_Properties_of_Reed-Solomon_Codes|$\text{Reed&ndash;Solomon code}$]].<br><br>
 
 
''Note'' &nbsp; For convolutional codes, in particular, the third identifier parameter has a different meaning than for block codes. $\text{CC (2, 1, 32)}$&nbsp; for example, indicates memory&nbsp; $m = 32$&nbsp;.<br>
 
[[File:P ID2377 KC T 1 7 S5b v4.png|right|frame|Rates and required&nbsp; $E_{\rm B}/N_0$&nbsp; for iterative coding methods |class=fit]]
 
  
  
 +
Much better results can be achieved with&nbsp;  &raquo;'''iterative decoding methods'''&laquo;&nbsp; (see fourth main chapter),&nbsp; as the second graph shows.
 +
[[File:EN_KC_T_1_7_S5b.png|right|frame|Rates and required&nbsp; $E_{\rm B}/N_0$&nbsp; for iterative coding methods |class=fit]]
 +
*This means: &nbsp;The individual marker points are much closer to the capacity curve&nbsp; $C_{\rm BPSK}$&nbsp; for digital input.<br>
  
 +
*The solid blue Gaussian capacity curve is labeled&nbsp; $C_{\rm Gaussian}$.
  
Much better results can be achieved with iterative decoding, as the second graph shows.
 
*This means: &nbsp;The individual marker points are much closer to the capacity curve.<br>
 
*The solid blue curve previously labeled "Gauss capacity" is here called "Gauss (real)".
 
<br clear=all>
 
 
Here are some more explanations about this graph:
 
Here are some more explanations about this graph:
* Red crosses mark so-called&nbsp; [[Channel_Coding/The_Basics_of_Turbo_Codes|Turbo codes]]&nbsp; accordingt to&nbsp; [https://en.wikipedia.org/wiki/Consultative_Committee_for_Space_Data_Systems CCSDS]&nbsp; (<i>Consultative Committee for Space Data Systems</i>&nbsp;) with each&nbsp; $k = 6920$&nbsp; information bits and different code lengths&nbsp; $n$. These codes, invented by&nbsp; [http://perso.telecom-bretagne.eu/claudeberrou/ Claude Berrou]&nbsp; around 1990, can be decoded iteratively. The (red) marks are each less than&nbsp; $1 \, \rm dB$&nbsp; from the Shannon bound.<br>
+
# Red crosses mark so-called&nbsp; [[Channel_Coding/The_Basics_of_Turbo_Codes|$\text{turbo codes}$]]&nbsp; accordingt to&nbsp; [https://en.wikipedia.org/wiki/Consultative_Committee_for_Space_Data_Systems $\text{CCSDS}$]&nbsp; ("Consultative Committee for Space Data Systems")&nbsp; with each&nbsp; $k = 6920$&nbsp; information bits and different code lengths&nbsp; $n$.  
 
+
#These codes,&nbsp; invented by&nbsp; [http://perso.telecom-bretagne.eu/claudeberrou/ $\text{Claude Berrou}$]&nbsp; around 1990,&nbsp; can be decoded iteratively.&nbsp; The&nbsp; (red)&nbsp; marks are each less than&nbsp; $1 \, \rm dB$&nbsp; from the Shannon bound.<br>
*Similar behavior is shown by&nbsp; [[Channel_Coding/The_Basics_of_Low-Density_Parity_Check_Codes|LDPC codes]]&nbsp; (<i>Low Density Parity&ndash;check Codes</i>&nbsp;) marked by white rectangles, which have been used since 2006 on&nbsp; [https://en.wikipedia.org/wiki/DVB-S2 DVB&ndash;S(2)]&nbsp; (<i>Digital Video Broadcast over Satellite</i>&nbsp;). These are well suited for iterative decoding using ''factor&ndash;graphs'' &nbsp; and &nbsp; ''exit charts'' due to the sparse occupancy of the parity-check matrix&nbsp; $\boldsymbol {\rm H}$&nbsp; (with ones). See  [Hag02]<ref name='Hag02'>Hagenauer, J.: ''The Turbo Principle in Mobile Communications''. In: Int. Symp. on Information Theory and Its Applications, Oct.2010,  [http://wwwmayr.in.tum.de/konferenzen/Jass05/courses/4/papers/prof_hagenauer.pdf PDF&ndash;Dokument.]</ref><br>
+
#Similar behavior is shown by&nbsp; [[Channel_Coding/The_Basics_of_Low-Density_Parity_Check_Codes|$\text{LDPC codes}$]]&nbsp; ("Low Density Parity&ndash;check Codes")&nbsp; marked by white rectangles,&nbsp; which have been used since in 2006 on&nbsp; [https://en.wikipedia.org/wiki/DVB-S2 $\text{DVB&ndash;S(2)}$]&nbsp; ("Digital Video Broadcast over Satellite").  
 
+
#These are well suited for iterative decoding using&nbsp; "factor&ndash;graphs"&nbsp; &nbsp; and &nbsp; "exit charts"&nbsp; due to the sparse occupancy of the parity-check matrix&nbsp; $\boldsymbol {\rm H}$&nbsp; (with "ones").&nbsp; See  [Hag02]<ref name='Hag02'>Hagenauer, J.: The Turbo Principle in Mobile Communications.&nbsp; In: Int. Symp. on Information Theory and Its Applications, Oct.2010,&nbsp; [http://wwwmayr.in.tum.de/konferenzen/Jass05/courses/4/papers/prof_hagenauer.pdf $\text{PDF document}$.]</ref><br>
*The black dots mark the CCSDS specified&nbsp; [[Channel_Coding/The_Basics_of_Low-Density_Parity_Check_Codes|LDPC codes]], all of which assume a constant number of information bits&nbsp; $(k = 16384)$. In contrast, for all white rectangles, the code length&nbsp; $n = 64800$&nbsp; is constant, while the number&nbsp; $k$&nbsp; of information bits changes according to the rate&nbsp; $R = k/n$&nbsp;.<br>
+
#The black dots mark the CCSDS specified&nbsp; [[Channel_Coding/The_Basics_of_Low-Density_Parity_Check_Codes|$\text{LDPC codes}$]],&nbsp; all of which assume a constant number of information bits&nbsp; $(k = 16384)$.&nbsp;
 
+
#In contrast,&nbsp; for all white rectangles,&nbsp; the code length&nbsp; $n = 64800$&nbsp; is constant,&nbsp; while the number&nbsp; $k$&nbsp; of information bits changes according to the rate&nbsp; $R = k/n$.<br>
*Around the year 2000, many researchers had the ambition to approach the Shannon bound to within fractions of a &nbsp;$\rm dB$&nbsp;. The yellow cross marks such a result from [CFRU01]<ref name='CFRU01'>Chung S.Y; Forney Jr., G.D.; Richardson, T.J.; Urbanke, R.: ''On the Design of Low-Density Parity- Check Codes within 0.0045 dB of the Shannon Limit''. – In: IEEE Communications Letters, vol. 5, no. 2 (2001), pp. 58–60.''</ref>. Used an irregular rate&ndash;1/2&ndash;LDPC&ndash;code of code length&nbsp; $n = 2 \cdot10^6$.<br><br>
+
#Around the year 2000,&nbsp; many researchers had the ambition to approach the Shannon bound to within fractions of a &nbsp;$\rm dB$.&nbsp; The yellow cross marks such a result from [CFRU01]<ref name='CFRU01'>Chung S.Y; Forney Jr., G.D.; Richardson, T.J.; Urbanke, R.:&nbsp; On the Design of Low-Density Parity- Check Codes within 0.0045 dB of the Shannon Limit. – In: IEEE Communications Letters, vol. 5, no. 2 (2001), pp. 58–60.</ref>. Used an irregular rate&ndash;1/2&ndash;LDPC of code length&nbsp; $n = 2 \cdot10^6$.<br><br>
  
 
{{BlaueBox|TEXT=   
 
{{BlaueBox|TEXT=   
 
$\text{Conclusion:}$&nbsp; It should be noted that Shannon recognized and proved as early as 1948 that no one-dimensional modulation method can lie to the left of the AWGN limit curve "Gaussian (real)" drawn throughout.   
 
$\text{Conclusion:}$&nbsp; It should be noted that Shannon recognized and proved as early as 1948 that no one-dimensional modulation method can lie to the left of the AWGN limit curve "Gaussian (real)" drawn throughout.   
 
*For two-dimensional methods such as QAM and multilevel PSK, on the other hand, the "Gaussian (complex)" limit curve applies, which is drawn here as a dashed line and always lies to the left of the solid curve.  
 
*For two-dimensional methods such as QAM and multilevel PSK, on the other hand, the "Gaussian (complex)" limit curve applies, which is drawn here as a dashed line and always lies to the left of the solid curve.  
*For more details, see the&nbsp; [[Information_Theory/AWGN_Channel_Capacity_for_Discrete_Input#Maximum_code_rate_for_QAM_structures|"Maximum code rate for QAM structures"]]&nbsp; section of the "Information Theory" book.<br>
+
*For more details, see the&nbsp; [[Information_Theory/AWGN_Channel_Capacity_for_Discrete_Input#Maximum_code_rate_for_QAM_structures|$\text{Maximum code rate for QAM structures}$]]&nbsp; section of the "Information Theory" book.<br>
*Also, this limit curve has now been nearly reached with QAM procedures and very long channel codes, without ever being exceeded.}}<br>
+
*Also, this limit curve has now been nearly reached with QAM methods and very long channel codes, without ever being exceeded.}}<br>
  
 
== Exercises for the chapter ==
 
== Exercises for the chapter ==
 
<br>
 
<br>
[[Aufgaben:Aufgabe_1.17:_Zum_Kanalcodierungstheorem|Aufgabe 1.17: Zum Kanalcodierungstheorem]]
+
[[Aufgaben:Exercise_1.17:_About_the_Channel_Coding_Theorem|Exercise 1.17: About the Channel Coding Theorem]]
  
[[Aufgaben:Aufgabe_1.17Z:_BPSK–Kanalkapazität|Aufgabe 1.17Z: BPSK–Kanalkapazität]]
+
[[Aufgaben:Exercise_1.17Z:_BPSK_Channel_Capacity|Exercise 1.17Z: BPSK Channel Capacity]]
  
==Quellenverzeichnis==
+
==References==
 
<references/>
 
<references/>
  
 
{{Display}}
 
{{Display}}

Latest revision as of 11:12, 22 November 2022

Channel coding theorem and channel capacity


We further consider a binary block code with 

  • $k$  information bits per block,
  • code words of length  $n$,
  • resulting in the code rate  $R=k/n$  with the unit  "information bit/code symbol".


The ingenious information theorist  $\text{Claude E. Shannon}$  has dealt very intensively with the correctability of such codes already in 1948 and has given for this a limit for each channel which results from information-theoretical considerations alone.  Up to this day,  no code has been found which exceeds this limit,  and this will remain so.

$\text{Shannon's channel coding theorem:}$  For each channel with channel capacity  $C > 0$  there always exists  (at least)  one code whose error probability approaches zero as long as the code rate  $R$  is smaller than the channel capacity  $C$.  The prerequisite for this is that the following holds for the block length of this code:  

$$n \to \infty.$$


Notes: 

  • The statement  "The error probability approaches zero"  is not identical with the statement  "The transmission is error-free".  Example:   For an infinitely long sequence,  finitely many symbols are falsified.
  • For some channels,  even with  $R=C$  the error probability still goes towards zero  (but not for all).


The inverse of the channel coding theorem is also true and states:

$\text{Inverse:}$  If the code rate  $R$  is larger than the channel capacity  $C$,  then an arbitrarily small error probability cannot be achieved in any case.


To derive and calculate the channel capacity,  we first assume a digital channel with  $M_x$  possible input values  $x$  and  $M_y$  possible output values  $y$.  Then,  for the mean mutual information  – in short,  the  $\text{mutual information}$   –  between the random variable  $x$  at the channel input and the random variable  $y$  at its output:

\[I(x; y) =\sum_{i= 1 }^{M_X} \hspace{0.15cm}\sum_{j= 1 }^{M_Y} \hspace{0.15cm}{\rm Pr}(x_i, y_j) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i)}{{\rm Pr}(y_j)} = \sum_{i= 1 }^{M_X} \hspace{0.15cm}\sum_{j= 1 }^{M_Y}\hspace{0.15cm}{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i) \cdot {\rm Pr}(x_i) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_i)}{\sum_{k= 1}^{M_X} {\rm Pr}(y_j \hspace{0.05cm}| \hspace{0.05cm}x_k) \cdot {\rm Pr}(x_k)} \hspace{0.05cm}.\]

In the transition from the first to the second equation, the   $\text{Theorem of Bayes}$   and the   $\text{Theorem of Total Probability}$   were considered.

Further,  it should be noted:

  • The  "binary logarithm"  is denoted here with  "log2".  Partially,  we also use  "ld"  ("logarithm dualis")  for this in our learning tutorial.
  • In contrast to the book  $\text{Information Theory}$  we do not distinguish in the following between the random variable  $($upper case letters  $X$  resp.  $Y)$  and the realizations $($lower case letters  $x$  resp.  $y)$.


$\text{Definition:}$  The  »channel capacity«  introduced by Shannon gives the maximum mutual information  $I(x; y)$  between the input variable  $x$  and output variable  $y$:

\[C = \max_{{{\rm Pr}(x_i)}} \hspace{0.1cm} I(X; Y) \hspace{0.05cm}.\]
  • The pseudo–unit  "bit/channel use"  must be added.


Since the maximization of the mutual information  $I(x; y)$  must be done over all possible  (discrete)  input distributions  ${\rm Pr}(x_i)$,
»the channel capacity is independent of the input and thus a pure channel parameter«.

Channel capacity of the BSC model


We now apply these definitions to the  $\text{BSC model}$  ("Binary Symmetric Channel"):

\[I(x; y) = {\rm Pr}(y = 0 \hspace{0.03cm}| \hspace{0.03cm}x = 0) \cdot {\rm Pr}(x = 0) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y = 0 \hspace{0.03cm}| \hspace{0.03cm}x = 0)}{{\rm Pr}(y = 0)} + {\rm Pr}(y = 1 \hspace{0.03cm}| \hspace{0.03cm}x = 0) \cdot {\rm Pr}(x = 0) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(Y = 1 \hspace{0.03cm}| \hspace{0.03cm}x = 0)}{{\rm Pr}(y = 1)} + \]
\[\hspace{1.45cm} + \hspace{0.15cm}{\rm Pr}(y = 0 \hspace{0.05cm}| \hspace{0.05cm}x = 1) \cdot {\rm Pr}(x = 1) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(Y = 0 \hspace{0.05cm}| \hspace{0.05cm}x = 1)}{{\rm Pr}(y = 0)} + {\rm Pr}(y = 1 \hspace{0.05cm}| \hspace{0.05cm}x = 1) \cdot {\rm Pr}(x = 1) \cdot {\rm log_2 } \hspace{0.15cm}\frac{{\rm Pr}(y = 1 \hspace{0.05cm}| \hspace{0.05cm}x = 1)}{{\rm Pr}(y = 1)} \hspace{0.05cm}.\]

The channel capacity is arrived at by the following considerations:

Binary symmetric channel
  • Maximization with respect to the input distribution leads to equally probable symbols:
\[{\rm Pr}(x = 0) = {\rm Pr}(x = 1) = 1/2 \hspace{0.05cm}.\]
  • Due to the symmetry evident from the model,  the following then holds simultaneously:
\[{\rm Pr}(y = 0) = {\rm Pr}(y = 1) = 1/2 \hspace{0.05cm}.\]
  • We also consider the BSC transmission probabilities:
\[{\rm Pr}(y = 1 \hspace{0.05cm}| \hspace{0.05cm}x = 0) = {\rm Pr}(y = 0 \hspace{0.05cm}| \hspace{0.05cm}x = 1) = \varepsilon \hspace{0.05cm},\]
\[{\rm Pr}(y = 0 \hspace{0.05cm}| \hspace{0.05cm}x = 0) = {\rm Pr}(y = 1 \hspace{0.05cm}| \hspace{0.05cm}x = 1) = 1-\varepsilon \hspace{0.05cm}.\]
  • After combining two terms each,  we thus obtain:
\[C \hspace{0.15cm} = \hspace{0.15cm} 2 \cdot 1/2 \cdot \varepsilon \cdot {\rm log_2 } \hspace{0.15cm}\frac{\varepsilon}{1/2 }+ 2 \cdot 1/2 \cdot (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm}\frac{1- \varepsilon}{1/2 } \varepsilon \cdot {\rm ld } \hspace{0.15cm}2 - \varepsilon \cdot {\rm log_2 } \hspace{0.15cm} \frac{1}{\varepsilon }+ (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm} 2 - (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{1- \varepsilon}\]
\[\Rightarrow \hspace{0.3cm} C \hspace{0.15cm} = \hspace{0.15cm} 1 - H_{\rm bin}(\varepsilon). \]
  • Here,  the  "binary entropy function"  is used:
\[H_{\rm bin}(\varepsilon) = \varepsilon \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{\varepsilon}+ (1- \varepsilon) \cdot {\rm log_2 } \hspace{0.15cm}\frac{1}{1- \varepsilon}\hspace{0.05cm}.\]

The right graph shows the BSC channel capacity depending on the falsificaion probability  $\varepsilon$.  On the left,  for comparison,  the binary entropy function is shown,  which has already been defined in the chapter  $\text{Discrete Memoryless Sources}$  of the book  "Information Theory". 

Channel capacity of the BSC model

One can see from this representation:

  • The falsificaion probability  $\varepsilon$  leads to the channel capacity  $C(\varepsilon)$.  According to the  $\text{channel coding theorem}$  error-free decoding is only possible if the code rate  $R \le C(\varepsilon)$.
  • With  $\varepsilon = 10\%$,  error-free decoding is impossible  if the code rate  $R > 0.531$   $($because:  $C(0.1) = 0.531)$.
  • With  $\varepsilon = 50\%$,  error-free decoding is impossible even if the code rate is arbitrarily small   $($because:  $C(0.5) = 0)$.
  • From an information theory point of view  $\varepsilon = 1$  $($inversion of all bits$)$  is equivalent to  $\varepsilon = 0$  $($"error-free transmission"$)$.
  • Error-free decoding is achieved here by swapping the zeros and ones, i.e. by a so-called  "mapping".
  • Similarly  $\varepsilon = 0.9$  is equivalent to  $\varepsilon = 0.1$. 


Channel capacity of the AWGN model


We now consider the  $\text{AWGN channel}$  ("Additive White Gaussian Noise").

AWGN channel model

Here,  for the output signal  $y = x + n$,  where  $n$  describes a  $\text{Gaussian distributed random variable}$  and it applies to their expected values  ("moments"):

  1.  ${\rm E}[n] = 0,$
  2.  ${\rm E}[n^2] = P_n.$


Thus,  regardless of the input signal  $x$  $($analog or digital$)$,  there is always a continuous-valued output signal  $y$,  and in the  $\text{equation for mutual information}$  is to be used: 

$$M_y \to\infty.$$

The calculation of the AWGN channel capacity is given here only in keywords.  The exact derivation can be found in the fourth main chapter  "Discrete Value Information Theory"  of the textbook  $\text{Information Theory}$.

  • The input quantity  $x$  optimized with respect to maximum mutual information will certainly be continuous-valued,  that is,  for the AWGN channel in addition to   $M_y \to\infty$   also holds   $M_x \to\infty$.
\[C = \max_{f_x(x)} \hspace{0.1cm} I(x; y)\hspace{0.05cm},\hspace{0.3cm}{\rm where \hspace{0.15cm} must \hspace{0.15cm} apply} \text{:}\hspace{0.15cm} {\rm E} \left [ x^2 \right ] \le P_x \hspace{0.05cm}.\]
  • The optimization also yields a Gaussian distribution for the input PDF   ⇒   $x$,  $n$  and  $y$  are Gaussian distributed according to the probability density functions  $f_x(x)$,   $f_n(n)$   and   $f_y(y)$.  We designate the corresponding powers  $P_x$,  $P_n$  and  $P_y$.
  • After longer calculation one gets for the channel capacity using the  "binary logarithm"  $\log_2(\cdot)$  –  again with the pseudo-unit  "bit/channel use":
\[C = {\rm log_2 } \hspace{0.15cm} \sqrt{\frac{P_y}{P_n }} = {\rm log_2 } \hspace{0.15cm} \sqrt{\frac{P_x + P_n}{P_n }} = {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + \frac{P_x}{P_n } \right )\hspace{0.05cm}.\]
  • If  $x$  describes a  discrete-time signal with symbol rate  $1/T_{\rm S}$,  it must be bandlimited to   $B = 1/(2T_{\rm S})$,   and the same bandwidth  $B$  must be applied to the noise signal  $n$  ⇒   "noise bandwidth":
\[P_X = \frac{E_{\rm S}}{T_{\rm S} } \hspace{0.05cm}, \hspace{0.4cm} P_N = \frac{N_0}{2T_{\rm S} }\hspace{0.05cm}. \]
  • Thus, the AWGN channel capacity can also be expressed by the  »transmitted energy per symbol«  $(E_{\rm S})$  and the  »noise power density«  $(N_0)$:
\[C = {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + {2 E_{\rm S}}/{N_0 } \right )\hspace{0.05cm}, \hspace{1.9cm} \text {unit:}\hspace{0.3cm} \frac{\rm bit}{\rm channel\:use}\hspace{0.05cm}.\]
  • The following equation gives the channel capacity per unit time  $($denoted by $^{\star})$:
\[C^{\star} = \frac{C}{T_{\rm S} } = B \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 + {2 E_{\rm S}}/{N_0 } \right )\hspace{0.05cm}, \hspace{0.8cm} \text {unit:} \hspace{0.3cm} \frac{\rm bit}{\rm time\:unit}\hspace{0.05cm}.\]

$\text{Example 1:}$ 

  • For  $E_{\rm S}/N_0 = 7.5$   ⇒   $10 \cdot \lg \, E_{\rm S}/N_0 = 8.75 \, \rm dB$  the channel capacity is 
$$C = {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm} (16) = 2 \, \rm bit/channel\:use.$$
  • For a channel with the  (physical)  bandwidth  $B = 4 \, \rm kHz$,  which corresponds to the sampling rate  $f_{\rm A} = 8\, \rm kHz$: 
$$C^\star = 16 \, \rm kbit/s.$$


  • However,  a comparison of different encoding methods at constant  "energy per transmitted symbol"   ⇒   $E_{\rm S}$  is not fair. 
  • Rather,  for this comparison,  the  "energy per source bit"   ⇒   $E_{\rm B}$  should be fixed.  The following relationships apply:
\[E_{\rm S} = R \cdot E_{\rm B} \hspace{0.3cm} \Rightarrow \hspace{0.3cm} E_{\rm B} = E_{\rm S} / R \hspace{0.05cm}. \]

$\text{Channel Coding Theorem for the AWGN channel:}$ 

  • Error-free decoding $($at infinitely long blocks   ⇒   $n \to \infty)$  is always possible if the code rate  $R$  is smaller than the channel capacity  $C$:
\[R < C = {1}/{2 } \cdot {\rm log_2 } \hspace{0.05cm}\left ( 1 +2 \cdot R\cdot E_{\rm B}/{N_0 } \right )\hspace{0.05cm}.\]
  • For each code rate  $R$  the required  $E_{\rm B}/N_0$  of the AWGN channel can thus be determined so that error-free decoding is just possible.
  • One obtains for the limiting case  $R = C$:
\[{E_{\rm B} }/{N_0} > \frac{2^{2R}-1}{2R } \hspace{0.05cm}.\]


The graph summarizes the result,  with the ordinate  $R$  plotted on a linear scale and the abscissa  $E_{\rm B}/{N_0 }$  plotted logarithmically.

AWGN channel capacity
  • Error-free coding is not possible outside the blue area.
  • The blue limit curve indicates the AWGN channel capacity  $C$.


From this graph and the above equation,  the following can be deduced:

  1. Channel capacity  $C$  increases with  $10 \cdot \lg \, E_{\rm B}/N_0 $  somewhat less than linearly.  In the graph,  some selected function values are indicated as blue crosses.
  2. If  $10 \cdot \lg \, E_{\rm B}/N_0 < -1.59 \, \rm dB$,  error-free decoding is impossible in principle.  If the code rate  $R = 0.5$,  then  $10 \cdot \lg \, E_{\rm B}/N_0 > 0 \, \rm dB$  must be   ⇒  $E_{\rm B} > N_0$.
  3. For all binary codes holds per se  $0 < R ≤ 1$. Only with non-binary codes  ⇒   rates  $R > 1$  are possible.  For example,  the maximum possible code rate of a quaternary code:  $R = \log_2 \, M_y = \log_2 \, 4 = 2$.
  4. All one-dimensional modulation types – i.e., those methods that use only the in-phase– or only the quadrature component such as  $\text{2–ASK}$$\text{BPSK}$  and  $\text{2–FSK}$  must be in the blue area of the present graphic.
  5. As shown in the chapter  "Maximum code rate for QAM structures",  there is a  "friendlier"  limit curve for two-dimensional modulation types such as the  "Quadrature Amplitude Modulation".

AWGN channel capacity for binary input signals


In this book we restrict ourselves mainly to binary codes,  that is,  to the Galois field  ${\rm GF}(2^n)$.  With this

Conditional PDFs for AWGN channel and binary input
  • firstly,  the code rate is limited to the range  $R ≤ 1$,
  • secondly,  also for  $R ≤ 1$  not the whole blue region is available  (see previous section).


  1. the parameters  $M_x = 2$  and  $M_y \to \infty$,
  2. bipolar signaling   ⇒   $x=0$   →   $\tilde{x} = +1$  and  $x=1$   →   $\tilde{x} = -1$,
  3. the transition from conditional probabilities  ${\rm Pr}(\tilde{x}_i)$  to conditional probability density functions,
  4. replace the sum with an integration.

  • The optimization of the source leads to equally probable symbols:
\[{\rm Pr}(\tilde{x} = +1) = {\rm Pr}(\tilde{x} = -1) = 1/2 \hspace{0.05cm}. \]
  • This gives for the maximum of the mutual information,  i.e. for the channel capacity:
\[C \hspace{-0.15cm} = {1}/{2} \cdot \int_{-\infty }^{+ \infty} \left [ f_{y\hspace{0.05cm} |\hspace{0.05cm}\tilde{x} = +1}(y)\cdot {\rm log_2 } \hspace{0.15cm}\frac {f_{y\hspace{0.05cm} |\hspace{0.05cm}\tilde{x} = +1}(y)}{f_y(y)} + f_{y\hspace{0.05cm} |\hspace{0.05cm}\tilde{x} = -1}(y)\cdot {\rm log_2 } \hspace{0.15cm}\frac {f_{y\hspace{0.05cm} |\hspace{0.05cm}\tilde{x} = -1}(y)}{f_y(y)} \right ]\hspace{0.1cm}{\rm d}y \hspace{0.05cm}.\]

The integral cannot be solved in mathematical closed form, but can only be evaluated numerically.

AWGN channel capacity for binary input signals
  1. The green curve shows the result.
  2. The blue curve gives for comparison the channel capacity for Gaussian distributed input signals derived in the last section.


It can be seen:

  • For  $10 \cdot \lg \, E_{\rm B}/N_0 < 0 \, \rm dB$  the two capacitance curves differ only slightly.
  • So,  for binary bipolar input,  compared to the optimum (Gaussian) input,  the characteristic  $10 \cdot \lg \, E_{\rm B}/N_0$  only needs to be increased by about  $0.1 \, \rm dB$  to also allow the code rate  $R = 0.5$.
  • From  $10 \cdot \lg \, E_{\rm B}/N_0 \approx6 \, \rm dB$  the capacity  $C = 1 \, \rm bit/channel\:use$  of the AWGN channel for binary input is almost reached.
  • In between, the limit curve is approximately exponentially increasing.


Common channel codes versus channel capacity


Now it shall be shown to what extent established channel codes approximate the BPSK channel capacity  (green curve).   In the following graph the rate   $R=k/n$   of these codes or the capacity   $C$   (with the additional pseudo–unit "bit/channel use")  is plotted as ordinate.

Rates and required  $E_{\rm B}/{N_0}$  of different channel codes

Further,  it is assumed:

  • the AWGN–channel,  denoted by  $10 \cdot \lg \, E_{\rm B}/N_0$  in dB,  and
  • bit error rate  $\rm BER=10^{-5}$ for all codes marked by crosses.


$\text{Please note:}$ 

  1. The channel capacity curves always apply to  $n \to \infty$  and  $\rm BER \to 0$ .
  2. If one would apply this strict requirement  "error-free"  also to the considered channel codes of finite code length  $n$,  this would always require  $10 \cdot \lg \, E_{\rm B}/N_0 \to \infty$ .
  3. But this is an academic problem of little practical significance.  For  $\rm BER = 10^{-10}$  a qualitatively and also quantitatively similar graph would result.
  4. For convolutional codes,  the third identifier parameter has a different meaning than for block codes.  For example,  $\text{CC (2, 1, 32)}$  indicates the memory  $m = 32$


The following are some  »explanations of the data taken from the lecture [Liv10][1]«:

  1. The points  $\rm A$,  $\rm B$  and  $\rm C$  mark  $\text{Hamming codes}$  of different rate.  They all require for  $\rm BER = 10^{-5}$  more than  $10 \cdot \lg \, E_{\rm B}/N_0 = 8 \, \rm dB$.
  2. $\rm D$  denotes the binary  $\text{Golay code}$  with rate  $1/2$  and  $\rm E$  denotes a  $\text{Reed–Muller code}$.  This very low rate code was used 1971 on the Mariner 9 spacecraft.
  3. Marked by  $\rm F$  is a high rate  $\text{Reed–Solomon codes}$   $(R = 223/255 > 0.9)$  and a required  $10 \cdot \lg \, E_{\rm B}/N_0 < 6 \, \rm dB$.
  4. The markers  $\rm G$  and  $\rm H$  denote exemplary  $\text{convolutional codes}$  medium rate. The code  $\rm G$  was used as early as 1972 on the Pioneer10 mission.
  5. The channel coding of the Voyager–mission in the late 1970s is marked by  $\rm I$.  It is the concatenation of a  $\text{CC (2, 1, 7)}$  with a  $\text{Reed–Solomon code}$.


Much better results can be achieved with  »iterative decoding methods«  (see fourth main chapter),  as the second graph shows.

Rates and required  $E_{\rm B}/N_0$  for iterative coding methods
  • This means:  The individual marker points are much closer to the capacity curve  $C_{\rm BPSK}$  for digital input.
  • The solid blue Gaussian capacity curve is labeled  $C_{\rm Gaussian}$.

Here are some more explanations about this graph:

  1. Red crosses mark so-called  $\text{turbo codes}$  accordingt to  $\text{CCSDS}$  ("Consultative Committee for Space Data Systems")  with each  $k = 6920$  information bits and different code lengths  $n$.
  2. These codes,  invented by  $\text{Claude Berrou}$  around 1990,  can be decoded iteratively.  The  (red)  marks are each less than  $1 \, \rm dB$  from the Shannon bound.
  3. Similar behavior is shown by  $\text{LDPC codes}$  ("Low Density Parity–check Codes")  marked by white rectangles,  which have been used since in 2006 on  $\text{DVB–S(2)}$  ("Digital Video Broadcast over Satellite").
  4. These are well suited for iterative decoding using  "factor–graphs"    and   "exit charts"  due to the sparse occupancy of the parity-check matrix  $\boldsymbol {\rm H}$  (with "ones").  See [Hag02][2]
  5. The black dots mark the CCSDS specified  $\text{LDPC codes}$,  all of which assume a constant number of information bits  $(k = 16384)$. 
  6. In contrast,  for all white rectangles,  the code length  $n = 64800$  is constant,  while the number  $k$  of information bits changes according to the rate  $R = k/n$.
  7. Around the year 2000,  many researchers had the ambition to approach the Shannon bound to within fractions of a  $\rm dB$.  The yellow cross marks such a result from [CFRU01][3]. Used an irregular rate–1/2–LDPC of code length  $n = 2 \cdot10^6$.

$\text{Conclusion:}$  It should be noted that Shannon recognized and proved as early as 1948 that no one-dimensional modulation method can lie to the left of the AWGN limit curve "Gaussian (real)" drawn throughout.

  • For two-dimensional methods such as QAM and multilevel PSK, on the other hand, the "Gaussian (complex)" limit curve applies, which is drawn here as a dashed line and always lies to the left of the solid curve.
  • For more details, see the  $\text{Maximum code rate for QAM structures}$  section of the "Information Theory" book.
  • Also, this limit curve has now been nearly reached with QAM methods and very long channel codes, without ever being exceeded.


Exercises for the chapter


Exercise 1.17: About the Channel Coding Theorem

Exercise 1.17Z: BPSK Channel Capacity

References

  1. Liva, G.: Channel Coding. Lecture manuscript, Chair of Communications Engineering, TU Munich and DLR Oberpfaffenhofen, 2010.
  2. Hagenauer, J.: The Turbo Principle in Mobile Communications.  In: Int. Symp. on Information Theory and Its Applications, Oct.2010,  $\text{PDF document}$.
  3. Chung S.Y; Forney Jr., G.D.; Richardson, T.J.; Urbanke, R.:  On the Design of Low-Density Parity- Check Codes within 0.0045 dB of the Shannon Limit. – In: IEEE Communications Letters, vol. 5, no. 2 (2001), pp. 58–60.