Difference between revisions of "Aufgaben:Exercise 4.11Z: Error Probability with QAM"
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| − | '''(1)''' | + | '''(1)''' With the values given, for ''Binary Phase Shift Keying'' (BPSK), one gets: |
:$$E_{\rm B} = {1}/{2} \cdot s_0^2 \cdot T_{\rm B} = \frac{1}{2}\cdot (2\,{\rm V})^2 \cdot 1\,{\rm µ s} = 2 \cdot 10^{-6}\,{\rm V^2s} | :$$E_{\rm B} = {1}/{2} \cdot s_0^2 \cdot T_{\rm B} = \frac{1}{2}\cdot (2\,{\rm V})^2 \cdot 1\,{\rm µ s} = 2 \cdot 10^{-6}\,{\rm V^2s} | ||
\hspace{0.3cm} \Rightarrow \hspace{0.3cm} {E_{\rm B}}/{N_0} = \frac {2 \cdot 10^{-6}\,{\rm V^2s}}{0.25 \cdot 10^{-6}\,{\rm V^2/Hz}} = 8$$ | \hspace{0.3cm} \Rightarrow \hspace{0.3cm} {E_{\rm B}}/{N_0} = \frac {2 \cdot 10^{-6}\,{\rm V^2s}}{0.25 \cdot 10^{-6}\,{\rm V^2/Hz}} = 8$$ | ||
:$$ \Rightarrow \hspace{0.3cm} p_\text{B, BPSK} = {\rm Q}\left ( \sqrt{16} \right ) = {\rm Q}\left ( 4 \right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{8}\right )\hspace{0.05cm}.$$ | :$$ \Rightarrow \hspace{0.3cm} p_\text{B, BPSK} = {\rm Q}\left ( \sqrt{16} \right ) = {\rm Q}\left ( 4 \right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{8}\right )\hspace{0.05cm}.$$ | ||
| − | * | + | *Based on the given $x$–values in the table, it is convenient to use the first equation in this subtask: |
:$$p_\text{B, BPSK} = {\rm Q}\left ( 4 \right ) \hspace{0.15cm}\underline {= 0.317 \cdot 10^{-4} }\hspace{0.05cm}.$$ | :$$p_\text{B, BPSK} = {\rm Q}\left ( 4 \right ) \hspace{0.15cm}\underline {= 0.317 \cdot 10^{-4} }\hspace{0.05cm}.$$ | ||
| − | '''(2)''' | + | '''(2)''' With twice the bit duration, the energy is also twice as large: $E_{\rm B} = 4 · 10^{–6} \ \rm V^2s$ ⇒ $E_{\rm B}/N_0 = 16$. |
| − | * | + | *It follows that: |
:$$p_\text{B, BPSK} = {\rm Q}\left ( \sqrt{32} \right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{16}\right ) ={1}/{2}\cdot {\rm erfc}\left ( 4\right ) \hspace{0.15cm}\underline {= 0.771 \cdot 10^{-8}}\hspace{0.05cm}.$$ | :$$p_\text{B, BPSK} = {\rm Q}\left ( \sqrt{32} \right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{16}\right ) ={1}/{2}\cdot {\rm erfc}\left ( 4\right ) \hspace{0.15cm}\underline {= 0.771 \cdot 10^{-8}}\hspace{0.05cm}.$$ | ||
| − | * | + | *For pragmatic reasons, the last column of the table was used here. |
| − | '''(3)''' | + | '''(3)''' Substituting the equations given for the 4-QAM into each other, we get the same result as for the BPSK: |
:$$p_{\rm B, \hspace{0.05cm}4-QAM} = {\rm Q}\left ( \sqrt{{2 \cdot E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{{E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) \equiv p_\text{B, BPSK}.$$ | :$$p_{\rm B, \hspace{0.05cm}4-QAM} = {\rm Q}\left ( \sqrt{{2 \cdot E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{{E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) \equiv p_\text{B, BPSK}.$$ | ||
| − | * | + | *Also, since the energy per bit has not changed from subtask '''(2)''' , the same error probability will arise: |
:$$p_{\rm B, \hspace{0.05cm}4-QAM}= {\rm Q}\left ( \sqrt{32} \right ) = {1}/{2}\cdot {\rm erfc}\left ( 4\right ) \hspace{0.15cm}\underline {= 0.771 \cdot 10^{-8}}\hspace{0.05cm}.$$ | :$$p_{\rm B, \hspace{0.05cm}4-QAM}= {\rm Q}\left ( \sqrt{32} \right ) = {1}/{2}\cdot {\rm erfc}\left ( 4\right ) \hspace{0.15cm}\underline {= 0.771 \cdot 10^{-8}}\hspace{0.05cm}.$$ | ||
| − | '''(4)''' | + | '''(4)''' Only<u>Answer 1</u> is correct: |
| − | * | + | *Of course the error probability of error is the same in the two branches. Why would it not be? |
| − | * | + | *This would no longer be true with a phase offset between the transmitter and receiver though. |
| − | * | + | *However, the distance of the useful samples from the threshold is $g_0$ here and thus smaller than the envelope $s_0$ of the entire 4-QAM by a factor of $\sqrt{2}$ . |
| − | * | + | *However, if the inphase branch (or the quadrature branch) is considered as a stand-alone BPSK, the noise power is also half that of BPSK because of the lower symbol rate. Therefore, the error probability remains the same. |
{{ML-Fuß}} | {{ML-Fuß}} | ||
Revision as of 17:38, 19 March 2022
Table with two different Gaussian error functions
We now make the following assumptions:
- binary bipolar amplitude coefficients $a_ν ∈ \{±1\}$,
- rectangular fundamental transmission pulse with amplitude $s_0$ and bit time $T_{\rm B}$,
- AWGN noise with noise power density $N_0$,
- a receiver according to the matched-filter principle,
- the best possible demodulation and detection.
As has been shown several times, the bit error probability of binary phase modulation $\rm (BPSK)$ under these conditions can be calculated using the following equations:
- $$ p_{\rm B, \hspace{0.05cm}BPSK} = {\rm Q}\left ({s_0}/{\sigma_d } \right ), \hspace{0.2cm} E_{\rm B} = {1}/{2} \cdot s_0^2 \cdot T_{\rm B} ,\hspace{0.2cm} \sigma_d^2 = {N_0}/{T_{\rm B} }$$
- $$\Rightarrow \hspace{0.3cm} p_{\rm B, \hspace{0.05cm}BPSK} = {\rm Q}\left ( \sqrt{{2 \cdot E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{{E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ).$$
The corresponding equations of $\rm 4–QAM$ are:
- $$ p_{\rm B, \hspace{0.05cm}4-QAM} = {\rm Q}\left ( {g_0}/{\sigma_d } \right ), \hspace{0.2cm}g_{0} = {s_0}/{\sqrt{2}}, \hspace{0.2cm}E_{\rm B} = {1}/{2} \cdot s_0^2 \cdot T_{\rm B} ,\hspace{0.2cm} \sigma_d^2 = {N_0}/({2 \cdot T_{\rm B} }).$$
Here it is taken into account that - in order to achieve the same transmission energy per bit as with BPSK - one must reduce the pulse amplitude $g_0$ of the square-wave impulses in the two sub-branches of 4-QAM by a factor of $\sqrt{2}$ . The envelope is then equal to $s_0$ for both systems.
Hints:
- This exercise belongs to the chapter Quadrature Amplitude Modulation.
- Reference is also made to the page Error probabilities – a brief overview in the previous chapter.
- Always assume the following numerical values: $s_0 = 2\,{\rm V}, \hspace{0.05cm} N_0 = 0.25 \cdot 10^{-6}\,{\rm V^2/Hz}\hspace{0.05cm}.$
- The bit time is $T_{\rm B} = 1 \ \rm µ s$ (question 1) and $T_{\rm B} = 2 \ \rm µ s$ (from question 2 onwards).
- In the table, the two common Gaussian error functions ${\rm Q}(x)$ and $1/2 \cdot {\rm erfc}(x)$ are given.
- Energies are to be given in $\rm V^2s$ ; thus, they refer to the reference resistance $R = 1 \ \rm \Omega$.
Questions
Solution
(1) With the values given, for Binary Phase Shift Keying (BPSK), one gets:
- $$E_{\rm B} = {1}/{2} \cdot s_0^2 \cdot T_{\rm B} = \frac{1}{2}\cdot (2\,{\rm V})^2 \cdot 1\,{\rm µ s} = 2 \cdot 10^{-6}\,{\rm V^2s} \hspace{0.3cm} \Rightarrow \hspace{0.3cm} {E_{\rm B}}/{N_0} = \frac {2 \cdot 10^{-6}\,{\rm V^2s}}{0.25 \cdot 10^{-6}\,{\rm V^2/Hz}} = 8$$
- $$ \Rightarrow \hspace{0.3cm} p_\text{B, BPSK} = {\rm Q}\left ( \sqrt{16} \right ) = {\rm Q}\left ( 4 \right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{8}\right )\hspace{0.05cm}.$$
- Based on the given $x$–values in the table, it is convenient to use the first equation in this subtask:
- $$p_\text{B, BPSK} = {\rm Q}\left ( 4 \right ) \hspace{0.15cm}\underline {= 0.317 \cdot 10^{-4} }\hspace{0.05cm}.$$
(2) With twice the bit duration, the energy is also twice as large: $E_{\rm B} = 4 · 10^{–6} \ \rm V^2s$ ⇒ $E_{\rm B}/N_0 = 16$.
- It follows that:
- $$p_\text{B, BPSK} = {\rm Q}\left ( \sqrt{32} \right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{16}\right ) ={1}/{2}\cdot {\rm erfc}\left ( 4\right ) \hspace{0.15cm}\underline {= 0.771 \cdot 10^{-8}}\hspace{0.05cm}.$$
- For pragmatic reasons, the last column of the table was used here.
(3) Substituting the equations given for the 4-QAM into each other, we get the same result as for the BPSK:
- $$p_{\rm B, \hspace{0.05cm}4-QAM} = {\rm Q}\left ( \sqrt{{2 \cdot E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) = {1}/{2}\cdot {\rm erfc}\left ( \sqrt{{E_{\rm B}}/{N_0 }} \hspace{0.1cm}\right ) \equiv p_\text{B, BPSK}.$$
- Also, since the energy per bit has not changed from subtask (2) , the same error probability will arise:
- $$p_{\rm B, \hspace{0.05cm}4-QAM}= {\rm Q}\left ( \sqrt{32} \right ) = {1}/{2}\cdot {\rm erfc}\left ( 4\right ) \hspace{0.15cm}\underline {= 0.771 \cdot 10^{-8}}\hspace{0.05cm}.$$
(4) OnlyAnswer 1 is correct:
- Of course the error probability of error is the same in the two branches. Why would it not be?
- This would no longer be true with a phase offset between the transmitter and receiver though.
- However, the distance of the useful samples from the threshold is $g_0$ here and thus smaller than the envelope $s_0$ of the entire 4-QAM by a factor of $\sqrt{2}$ .
- However, if the inphase branch (or the quadrature branch) is considered as a stand-alone BPSK, the noise power is also half that of BPSK because of the lower symbol rate. Therefore, the error probability remains the same.
