Difference between revisions of "Aufgaben:Exercise 4.2: Channel Log Likelihood Ratio at AWGN"
Line 42: | Line 42: | ||
+ They describe the binary transmission under Gaussian interference. | + They describe the binary transmission under Gaussian interference. | ||
+ The bit error probability without coding is ${\rm Q}(1/\sigma)$. | + The bit error probability without coding is ${\rm Q}(1/\sigma)$. | ||
− | + The channel | + | + The channel LLR is given as $L_{\rm K}(y) = K_{\rm L} \cdot y$ representable. |
{Which constant $K_{\rm L}$ characterizes the channel $\rm A$? | {Which constant $K_{\rm L}$ characterizes the channel $\rm A$? |
Revision as of 17:36, 27 October 2022
We consider two channels $\rm A$ and $\rm B$ , each with.
- binary bipolar input $x ∈ \{+1, \, -1\}$, and
- continuous-valued output $y ∈ {\rm \mathcal{R}}$ (real number).
The graph shows for both channels
- as blue curve the density functions $f_{y\hspace{0.05cm}|\hspace{0.05cm}x=+1}$,
- as red curve the density functions $f_{y\hspace{0.05cm}|\hspace{0.05cm}x=-1}$.
In "theory section" the channel LLR was derived for this AWGN constellation as follows:
- $$L_{\rm K}(y) = L(y\hspace{0.05cm}|\hspace{0.05cm}x) = {\rm ln} \hspace{0.15cm} \frac{{\rm Pr}(y \hspace{0.05cm}|\hspace{0.05cm}x=+1) }{{\rm Pr}(y \hspace{0.05cm}|\hspace{0.05cm}x = -1)} \hspace{0.05cm}.$$
Evaluating this equation analytically, we obtain with the proportionality constant $K_{\rm L} = 2/\sigma^2$:
- $$L_{\rm K}(y) = K_{\rm L} \cdot y \hspace{0.05cm}.$$
Hints:
- This exercise belongs to the chapter "Soft–in Soft–out Decoder".
- Reference is made in particular to the pages "Reliability Information – Log Likelihood Ratio" and [[Channel_Coding/Channel_Models_and_Decision_Structures#AWGN_channel_at_Binary_Input|"AWGN–Channel at Binary Input"].
Questions
Solution
- The transfer equation is always $y = x + n$, with $x ∈ \{+1, \, -1\}$; $n$ gives a Gaussian random variable with variance $\sigma$ ⇒ variance $\sigma^2$ ⇒ "AWGN Channel".
- The "AWGN Bit Error Probability" is calculated using the dispersion $\sigma$ to ${\rm Q}(1/\sigma)$ where ${\rm Q}(x)$ denotes the "complementary Gaussian error function".
- For each AWGN channel, according to the "theory section", the channel–LLR always results in $L_{\rm K}(y) = L(y|x) = K_{\rm L} \cdot y$.
- The constant $K_{\rm L}$ is different for the two channels, however.
(2) For the AWGN channel, $L_{\rm K}(y) = K_{\rm L} \cdot y$ with constant $K_{\rm L} = 2/\sigma^2$. The standard deviation $\sigma$ can be read from the graph on the data page as the distance of the inflection points within the Gaussian curves from their respective midpoints. For channel A, $\sigma = 1$ results.
- The same result is obtained by evaluating the Gaussian function
- $$\frac{f_{\rm G}( y = \sigma)}{f_{\rm G}( y = 0)} = {\rm e} ^{ - y^2/(2\sigma^2) } \Bigg |_{\hspace{0.05cm} y \hspace{0.05cm} = \hspace{0.05cm} \sigma} = {\rm e} ^{ -0.5} \approx 0.6065\hspace{0.05cm}.$$
- This means: At the abscissa value $y = \sigma$ the mean-free Gaussian function $f_{\rm G}(y)$ has decayed to $60.65\%$ of its maximum value. Thus, for the constant at channel A: $K_{\rm L} = 2/\sigma^2 \ \underline{= 2}$.
(3) The correct solutions are 1 to 4:
- We first give the respective LLRs of Channel A:
- $$L_{\rm K}(y_1 = +1.0) = +2\hspace{0.05cm},\hspace{0.3cm} L_{\rm K}(y_2 = +0.5) = +1\hspace{0.05cm},\hspace{0.3cm} L_{\rm K}(y_3 = -1.5) = -3\hspace{0.05cm}. $$
- This results in the following consequences:
- The decision for the (most probable) codebit $x_i$ is made based on the sign of $L_{\rm K}(y_i)$: $x_1 = +1, \ x_2 = +1, \ x_3 = \, -1$ ⇒ the proposed solutions 1, 2 and 3 are correct.
- The decision "$x_1 = +1$" is more reliable than the decision "$x_2 = +1$" ⇒ Proposition 4 is also correct.
- However, the decision "$x_1 = +1$" is less reliable than the decision "$x_3 = \, –1$" because $|L_{\rm K}(y_1)|$ is smaller than $|L_{\rm K}(y_3)|$ ⇒ Proposed solution 5 is incorrect.
This can also be interpreted as follows: The quotient between the red and the blue PDF value at $y_3 = \, -1.5$ is larger than the quotient between the blue and the red PDF value at $y_1 = +1$.
(4) Following the same considerations as in subtask (2), the scattering of channel B' is given by: $\sigma = 1/2 \ \Rightarrow \ K_{\rm L} = 2/\sigma^2 \ \underline{= 8}$.
(5) For channel B, the following applies: $L_{\rm K}(y_1 = +1.0) = +8, \ L_{\rm K}(y_2 = +0.5) = +4$ und $L_{\rm K}(y_3 = \, -1.5) = \, -12$.
- It is obvious that the first two proposed solutions are true, but not the third, because
- $$|L_{\rm K}(y_3 = -1.5, {\rm channel\hspace{0.15cm} A)}| = 3 \hspace{0.5cm} <\hspace{0.5cm} |L_{\rm K}(y_2 = 0.5, {\rm channel\hspace{0.15cm} B)}| = 4\hspace{0.05cm} . $$