Difference between revisions of "Aufgaben:Exercise 4.15Z: MSK Basic Pulse and MSK Spectrum"
From LNTwww
m |
m |
||
| Line 4: | Line 4: | ||
[[File:P_ID1744__Mod_Z_4_14.png|right|frame|MSK–Grundimpuls und –Spektrum]] | [[File:P_ID1744__Mod_Z_4_14.png|right|frame|MSK–Grundimpuls und –Spektrum]] | ||
| − | + | The fundamental pulse that is always required to [[Modulation_Methods/Nonlinear_Digital_Modulation#Realizing_MSK_as_Offset.E2.80.93QPSK|realize MSK as Offset–QPSK]] has the form shown in the graph above: | |
:$$g_{\rm MSK}(t) = \left\{ \begin{array}{l} g_0 \cdot \cos (\pi/2 \cdot t/T) \\ 0 \\ \end{array} \right.\quad \begin{array}{*{10}c} | t | \le T \hspace{0.05cm}, \\ {\rm sonst}\hspace{0.05cm}. \\ \end{array}$$ | :$$g_{\rm MSK}(t) = \left\{ \begin{array}{l} g_0 \cdot \cos (\pi/2 \cdot t/T) \\ 0 \\ \end{array} \right.\quad \begin{array}{*{10}c} | t | \le T \hspace{0.05cm}, \\ {\rm sonst}\hspace{0.05cm}. \\ \end{array}$$ | ||
| − | + | The spectral function $G(f)$ is drawn below, that is, the [[Signal_Representation/Fourier_Transform_and_its_Inverse#The_first_Fourier_integral|Fourier transform]] of $g(t)$. | |
| − | + | The corresponding equation is to be determined in this task, by considering: | |
:$$g(t) = c(t) \cdot r(t)\hspace{0.05cm}.$$ | :$$g(t) = c(t) \cdot r(t)\hspace{0.05cm}.$$ | ||
| − | + | The following abbreviations are used here: | |
| − | * $c(t)$ | + | * $c(t)$ is a cosine oscillation with amplitude $1$ and frequency $f_0$ (yet to be determined). |
| − | * $r(t)$ | + | * $r(t)$ is a square wave function with amplitude $g_0$ and duration $2T$. |
| Line 23: | Line 23: | ||
''Hints:'' | ''Hints:'' | ||
*This exercise belongs to the chapter [[Modulation_Methods/Nonlinear_Digital_Modulation|Nonlinear Digital Modulation]]. | *This exercise belongs to the chapter [[Modulation_Methods/Nonlinear_Digital_Modulation|Nonlinear Digital Modulation]]. | ||
| − | * | + | *Particular reference is made tot he page [[Modulation_Methods/Nonlinear_Digital_Modulation#Realizing_MSK_as_Offset.E2.80.93QPSK|Realizing MSK as Offset–QPSK]]. |
| − | * | + | *The result obtained here is also used in [[Aufgaben:Exercise_4.15:_MSK_Compared_with_BPSK_and_QPSK|Exercise 4.15]] . |
| Line 31: | Line 31: | ||
<quiz display=simple> | <quiz display=simple> | ||
| − | { | + | {How should one choose the frequency $f_0$ of the cosine oscillation $c(t)$ so that $g(t) = c(t) · r(t)$ ? |
|type="{}"} | |type="{}"} | ||
$f_0 \ = \ $ { 0.25 3% } $\ \cdot 1/T$ | $f_0 \ = \ $ { 0.25 3% } $\ \cdot 1/T$ | ||
| − | { | + | {What is the spectrum $R(f)$ of the rectangular function $r(t)$? What spectral value occurs when $f = 0$ ? |
|type="{}"} | |type="{}"} | ||
$R(f=0) \ = \ $ { 2 3% } $\ \cdot g_0 \cdot T$ | $R(f=0) \ = \ $ { 2 3% } $\ \cdot g_0 \cdot T$ | ||
| − | { | + | {Calculate the spectrun $G(f)$ of the MSK pulse $g(t)$, particularly the spectral value at $f = 0$. |
|type="{}"} | |type="{}"} | ||
$G(f=0) \ = \ $ { 1.273 3% } $\ \cdot g_0 \cdot T$ | $G(f=0) \ = \ $ { 1.273 3% } $\ \cdot g_0 \cdot T$ | ||
| − | { | + | {Summarize the result of question '''(3)''' in one term. At what frequency $f_1$ does $G(f)$ have its first zero? |
|type="{}"} | |type="{}"} | ||
$f_1 \ = \ $ { 0.75 3% } $\ \cdot 1/T$ | $f_1 \ = \ $ { 0.75 3% } $\ \cdot 1/T$ | ||
Revision as of 18:46, 21 March 2022
MSK–Grundimpuls und –Spektrum
The fundamental pulse that is always required to realize MSK as Offset–QPSK has the form shown in the graph above:
- $$g_{\rm MSK}(t) = \left\{ \begin{array}{l} g_0 \cdot \cos (\pi/2 \cdot t/T) \\ 0 \\ \end{array} \right.\quad \begin{array}{*{10}c} | t | \le T \hspace{0.05cm}, \\ {\rm sonst}\hspace{0.05cm}. \\ \end{array}$$
The spectral function $G(f)$ is drawn below, that is, the Fourier transform of $g(t)$.
The corresponding equation is to be determined in this task, by considering:
- $$g(t) = c(t) \cdot r(t)\hspace{0.05cm}.$$
The following abbreviations are used here:
- $c(t)$ is a cosine oscillation with amplitude $1$ and frequency $f_0$ (yet to be determined).
- $r(t)$ is a square wave function with amplitude $g_0$ and duration $2T$.
Hints:
- This exercise belongs to the chapter Nonlinear Digital Modulation.
- Particular reference is made tot he page Realizing MSK as Offset–QPSK.
- The result obtained here is also used in Exercise 4.15 .
Questions
Solution
(1) Die Periodendauer des Cosinussignals muss $T_0 = 4T$ sein. Damit ist die Frequenz $f_0 = 1/T_0\hspace{0.15cm}\underline {= 0.25} · 1/T$.
(2) Die Spektralfunktion eines Rechteckimpulses der Höhe $g_0$ und der Dauer $ 2T$ lautet:
- $$R(f) = g_0 \cdot 2 T \cdot {\rm si} ( \pi f \cdot 2T )\hspace{0.2cm}{\rm mit}\hspace{0.2cm}{\rm si} (x) = \sin(x)/x \hspace{0.3cm} \Rightarrow \hspace{0.3cm}R(f = 0) \hspace{0.15cm}\underline {= 2} \cdot g_0 \cdot T\hspace{0.05cm}.$$
(3) Aus $g(t) = c(t) · r(t)$ folgt nach dem Faltungssatz: $ G(f) = C(f) \star R(f)\hspace{0.05cm}.$
- Die Spektralfunktion $C(f)$ besteht aus zwei Diracfunktionen bei $± f_0$, jeweils mit dem Gewicht $1/2$. Daraus folgt:
- $$ G(f) = 2 \cdot g_0 \cdot T \cdot \big [ 1/2 \cdot \delta (f - f_0 ) + 1/2 \cdot \delta (f + f_0 )\big ] \star {\rm si} ( 2 \pi f T )= g_0 \cdot T \cdot \big [ {\rm si} ( 2 \pi T \cdot (f - f_0 ) ) + {\rm si} ( 2 \pi T \cdot (f + f_0 ) ) \big ] \hspace{0.05cm}.$$
- Mit dem Ergebnis $f_0 = 1/(4T)$ der Teilaufgabe (1) gilt weiter:
- $$G(f) = g_0 \cdot T \cdot \big [ {\rm si} ( 2 \pi f T - \pi / 2 ) + {\rm si} ( 2 \pi f T + \pi / 2) \big ]$$
- $$\Rightarrow \hspace{0.3cm} G(f = 0) = g_0 \hspace{-0.02cm}\cdot\hspace{-0.02cm} T \hspace{-0.02cm}\cdot\hspace{-0.02cm} \big [ {\rm si} ( - \pi/2 ) + {\rm si} ( +\pi/2 ) \big ] = 2 \cdot g_0 \hspace{-0.02cm}\cdot\hspace{-0.02cm} T \hspace{-0.02cm}\cdot\hspace{-0.02cm} {\rm si} ( \pi/2 ) = 2 \hspace{-0.02cm}\cdot\hspace{-0.02cm} g_0 \hspace{-0.02cm}\cdot\hspace{-0.02cm} T \hspace{-0.02cm}\cdot\hspace{-0.02cm} \frac {{\rm sin}({\pi}/{2}) } { {\pi}/{2} } ={4}/{\pi} \hspace{-0.02cm}\cdot\hspace{-0.02cm} g_0 \hspace{-0.02cm}\cdot\hspace{-0.02cm} T \hspace{0.15cm}\underline {\approx 1.273} \hspace{-0.02cm}\cdot\hspace{-0.02cm} g_0 \hspace{-0.02cm}\cdot\hspace{-0.02cm} T .$$
(4) Schreibt man die $\rm si$–Funktion aus, so erhält man mit $\sin (α ± π/2) = ± \cos(α)$:
- $$G(f) = g_0 \cdot T \cdot \left [ \frac{{\rm sin} ( 2 \pi f T - \pi / 2 )}{2 \pi f T - \pi / 2 } + \frac{{\rm sin} ( 2 \pi f T + \pi / 2 )}{2 \pi f T + \pi / 2 } \right ]= g_0 \cdot T \cdot \frac {2}{\pi}\cdot\left [ \frac{-{\rm cos} ( 2 \pi f T )}{4 f T - 1 } + \frac{{\rm cos} ( 2 \pi f T )}{4 f T + 1 } \right ]$$
- $$\Rightarrow \hspace{0.3cm} G(f) = g_0 \cdot T \cdot \frac {2}{\pi}\cdot \frac{(1+4 f T ) \cdot {\rm cos} ( 2 \pi f T )+ (1-4 f T ) \cdot {\rm cos} ( 2 \pi f T )}{1 - (4 f T)^2 } = \frac {4}{\pi}\cdot g_0 \cdot T \cdot \frac{ {\rm cos} ( 2 \pi f T )}{1 - (4 f T)^2 }\hspace{0.05cm}.$$
- Die Nullstellen von $G(f)$ werden allein durch die Cosinusfunktion im Zähler bestimmt und würden bei den Frequenzen $f · T = 0.25,\ 0.75,\ 1.25,$ ... liegen.
- Allerdings wird die erste Nullstelle bei $f · T = 0.25$ durch die gleichzeitige Nullstelle des Nenners aufgehoben. Deshalb gilt:
- $$f_1 \hspace{0.15cm}\underline {= 0.75} \cdot 1/T \hspace{0.05cm}.$$
