Difference between revisions of "Aufgaben:Exercise 3.4: Trapezoidal Spectrum and Pulse"
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<quiz display=simple> | <quiz display=simple> | ||
− | { | + | {For the given parameters, what is the equivalent bandwidth and rolloff factor of the spectrum $X(f)$? |
|type="{}"} | |type="{}"} | ||
$\Delta f \ = \ $ { 4 3% } $\text{kHz}$ | $\Delta f \ = \ $ { 4 3% } $\text{kHz}$ | ||
$r_f \hspace{0.35cm} = \ $ { 0.5 3% } | $r_f \hspace{0.35cm} = \ $ { 0.5 3% } | ||
− | { | + | {What are the signal values of $x(t)$ at $t = 0$, $t = T$ and $t = T/2$? |
|type="{}"} | |type="{}"} | ||
$x(t=0)\hspace{0.2cm} = \ $ { 4 3% } $\text{V}$ | $x(t=0)\hspace{0.2cm} = \ $ { 4 3% } $\text{V}$ | ||
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$x(t=T/2)\ = \ $ { 2.293 3% } $\text{V}$ | $x(t=T/2)\ = \ $ { 2.293 3% } $\text{V}$ | ||
− | { | + | {What is the spectrum $Y(f)$ of the trapezoidal pulse witht $y_0 = 4\,\text{V}$, $\Delta t = 1\,\text{ms}$ and $r_t = 0.5$? <br>What are the spectral values at the given frequencies? |
|type="{}"} | |type="{}"} | ||
$Y(f = 0)\hspace{0.2cm} = \ $ { 4 3% } $\text{mV/Hz}$ | $Y(f = 0)\hspace{0.2cm} = \ $ { 4 3% } $\text{mV/Hz}$ | ||
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$Y(f = 1.0 \,\text{kHz})\ = \ $ { 0. } $\text{mV/Hz}$ | $Y(f = 1.0 \,\text{kHz})\ = \ $ { 0. } $\text{mV/Hz}$ | ||
− | { | + | {Which spectral values result with $y_0 = 8\,\text{V}$, $\Delta t = 0.5\,\text{ms }$ and $r_t = 0.5$? |
|type="{}"} | |type="{}"} | ||
$Y(f=0)\hspace{0.2cm}= \ $ { 4 3% } $\text{mV/Hz}$ | $Y(f=0)\hspace{0.2cm}= \ $ { 4 3% } $\text{mV/Hz}$ | ||
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</quiz> | </quiz> | ||
− | === | + | ===Solution=== |
{{ML-Kopf}} | {{ML-Kopf}} | ||
− | '''(1)''' | + | '''(1)''' The equivalent bandwidth is by definition equal to the width of the equal-area rectangle: |
:$$\Delta f = f_1 + f_2 \hspace{0.15 cm}\underline{= 4\;{\rm{kHz}}}{\rm{.}}$$ | :$$\Delta f = f_1 + f_2 \hspace{0.15 cm}\underline{= 4\;{\rm{kHz}}}{\rm{.}}$$ | ||
− | * | + | *For the rolloff factor holds: |
:$${ {r_f = }}\frac{ {f_2 - f_1 }}{ {f_2 + f_1 }}\hspace{0.15 cm}\underline{ = 0.5}.$$ | :$${ {r_f = }}\frac{ {f_2 - f_1 }}{ {f_2 + f_1 }}\hspace{0.15 cm}\underline{ = 0.5}.$$ | ||
− | '''(2)''' | + | '''(2)''' The maximum value of the pulse $x(t)$ occurs at time $t = 0$ : |
:$$x_0 = x(t = 0) = X_0 \cdot \Delta f \hspace{0.15 cm}\underline{= 4\, \text{V}}.$$ | :$$x_0 = x(t = 0) = X_0 \cdot \Delta f \hspace{0.15 cm}\underline{= 4\, \text{V}}.$$ | ||
− | * | + | *At time $t = T = 1/\Delta f$ applies due to $\text{si}(\pi) = 0$: |
:$$x( {t = T} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( {\rm{\pi }} ) \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} )\hspace{0.15 cm}\underline{ = 0}.$$ | :$$x( {t = T} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( {\rm{\pi }} ) \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} )\hspace{0.15 cm}\underline{ = 0}.$$ | ||
− | * | + | *Also at all multiples of $T$ $x(t)$ exhibits zero crossings. At time $t = T/2$ holds: |
:$$x( {t = T/2} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits}( { { {\rm{\pi }}}/{4}} ) = x_0 \cdot \frac{ { 1 \cdot \sqrt 2 /2}}{ { {\rm{\pi /}}2 \cdot {\rm{\pi /4}}}} = x_0 \cdot \frac{ {4 \cdot \sqrt 2 }}{ { {\rm{\pi }}^{\rm{2}} }} \hspace{0.15 cm}\underline{= 2.293\;{\rm{V}}}{\rm{.}}$$ | :$$x( {t = T/2} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits}( { { {\rm{\pi }}}/{4}} ) = x_0 \cdot \frac{ { 1 \cdot \sqrt 2 /2}}{ { {\rm{\pi /}}2 \cdot {\rm{\pi /4}}}} = x_0 \cdot \frac{ {4 \cdot \sqrt 2 }}{ { {\rm{\pi }}^{\rm{2}} }} \hspace{0.15 cm}\underline{= 2.293\;{\rm{V}}}{\rm{.}}$$ | ||
− | '''(3)''' | + | '''(3)''' The time function associated with the trapezoidal spectrum $X(f)$ is according to the specification: |
:$$x( t ) = X_0 \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_f \cdot \Delta f \cdot t} ).$$ | :$$x( t ) = X_0 \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_f \cdot \Delta f \cdot t} ).$$ | ||
− | * | + | *Since both $X(f)$ and $x(t)$ are real and, moreover, $y(t)$ is of the same form as $X(f)$ , we obtain, taking into account all equivalences for the spectral function of the trapezoidal pulse: |
:$$Y( f ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta t \cdot f} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_t \cdot \Delta t \cdot f} ).$$ | :$$Y( f ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta t \cdot f} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_t \cdot \Delta t \cdot f} ).$$ | ||
− | * | + | *In particular, holds: |
:$$Y( {f = 0} ) = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \;{\rm{mV/Hz}}}{\rm{,}}$$ | :$$Y( {f = 0} ) = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \;{\rm{mV/Hz}}}{\rm{,}}$$ | ||
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− | '''(4)''' | + | '''(4)''' The spectral value at frequency $f = 0$ is not changed: |
:$$Y_0 = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \,\rm{mV/Hz}}.$$ | :$$Y_0 = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \,\rm{mV/Hz}}.$$ | ||
− | * | + | *But since the time function is now only half as wide, the spectrum widens by a factor of $2$: |
:$$Y( {f = 1\;{\rm{kHz}}} ) = Y_0 \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{4}} ) \hspace{0.15 cm}\underline{= 2.293\,{\rm{mV/Hz}}}{\rm{.}}$$ | :$$Y( {f = 1\;{\rm{kHz}}} ) = Y_0 \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{4}} ) \hspace{0.15 cm}\underline{= 2.293\,{\rm{mV/Hz}}}{\rm{.}}$$ | ||
− | *In | + | *In subtask '''(3)''' this spectral value occurred at the frequency $f = 0.5\,\rm{kHz}$ aufgetreten. |
{{ML-Fuß}} | {{ML-Fuß}} | ||
__NOEDITSECTION__ | __NOEDITSECTION__ | ||
[[Category:Exercises for Signal Representation|^3.3 Fourier Transform Theorems^]] | [[Category:Exercises for Signal Representation|^3.3 Fourier Transform Theorems^]] |
Revision as of 20:11, 23 January 2021
We consider here a trapezoidal spectral function $X(f)$ according to the upper graph, which is completely described by the three parameters $X_0$, $f_1$ and $f_2$ . For the two corner frequencies, $f_2 > 0$ and $0 \leq f_1 \leq f_2$ always apply.
Instead of the corner frequencies $f_1$ and $f_2$ , the following two descriptive variables can also be used:
- the equivalent bandwidth:
- $$\Delta f = f_1 + f_2,$$
- the so-called rolloff factor (in the frequency domain):
- $$r_f = \frac{ {f_2 - f_1 }}{ {f_2 + f_1 }}.$$
With these quantities, the associated time function (see middle graph) is:-
- $$x( t ) = X_0 \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi} \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm \pi} \cdot r_f \cdot \Delta f\cdot t} ).$$
Here $\text{si}(x) = \text{sin}(x)/x$ is the so-called splitting function.
In this example, the numerical values $X_0 = 10^{–3}\,\text{V/Hz}$, $f_1 = 1\,\text{kHz}$ and $f_2 = 3\,\text{kHz}$ are to be used. The time $T = 1/\Delta f$ is only used for standardisation purposes. From subtask (3) a trapezoidal signal $y(t)$ is considered, which is identical in shape to the spectrum $X(f)$ .
The following can be used here as descriptive variables:
- the pulse amplitude $y_0 = y(t = 0)$,
- the equivalent pulse duration (defined via the rectangle with the same area):
- $$\Delta t = t_1 + t_2,$$
- the rolloff factor (in the time domain) with comparable definition as $r_f$:
- $$r_t = \frac{ {t_2 - t_1 }}{ {t_2 + t_1 }}.$$
Let $y_0 = 4\,\text{V}$, $\Delta t = 1\,\text{ms}$ and $r_t = 0.5$.
Hints:
- This exercise belongs to the chapter Fourier Transform Laws.
- Use the Vertauschungssatz and the Similarity Theorem.
- You can check your results using the two interactive applets Impulses and Spectra sowie Frequenzgang und Impulsantwort .
Questions
Solution
- $$\Delta f = f_1 + f_2 \hspace{0.15 cm}\underline{= 4\;{\rm{kHz}}}{\rm{.}}$$
- For the rolloff factor holds:
- $${ {r_f = }}\frac{ {f_2 - f_1 }}{ {f_2 + f_1 }}\hspace{0.15 cm}\underline{ = 0.5}.$$
(2) The maximum value of the pulse $x(t)$ occurs at time $t = 0$ :
- $$x_0 = x(t = 0) = X_0 \cdot \Delta f \hspace{0.15 cm}\underline{= 4\, \text{V}}.$$
- At time $t = T = 1/\Delta f$ applies due to $\text{si}(\pi) = 0$:
- $$x( {t = T} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( {\rm{\pi }} ) \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} )\hspace{0.15 cm}\underline{ = 0}.$$
- Also at all multiples of $T$ $x(t)$ exhibits zero crossings. At time $t = T/2$ holds:
- $$x( {t = T/2} ) = x_0 \cdot {\mathop{\rm si}\nolimits} ( { { {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits}( { { {\rm{\pi }}}/{4}} ) = x_0 \cdot \frac{ { 1 \cdot \sqrt 2 /2}}{ { {\rm{\pi /}}2 \cdot {\rm{\pi /4}}}} = x_0 \cdot \frac{ {4 \cdot \sqrt 2 }}{ { {\rm{\pi }}^{\rm{2}} }} \hspace{0.15 cm}\underline{= 2.293\;{\rm{V}}}{\rm{.}}$$
(3) The time function associated with the trapezoidal spectrum $X(f)$ is according to the specification:
- $$x( t ) = X_0 \cdot \Delta f \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta f \cdot t} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_f \cdot \Delta f \cdot t} ).$$
- Since both $X(f)$ and $x(t)$ are real and, moreover, $y(t)$ is of the same form as $X(f)$ , we obtain, taking into account all equivalences for the spectral function of the trapezoidal pulse:
- $$Y( f ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot \Delta t \cdot f} ) \cdot {\mathop{\rm si}\nolimits} ( { {\rm{\pi }} \cdot r_t \cdot \Delta t \cdot f} ).$$
- In particular, holds:
- $$Y( {f = 0} ) = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \;{\rm{mV/Hz}}}{\rm{,}}$$
- $$Y( {f = 0.5\;{\rm{kHz}}} ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{4}} ) \hspace{0.15 cm}\underline{= 2.293 \;{\rm{mV/Hz}}}{\rm{,}}$$
- $$Y( {f = 1\;{\rm{kHz}}} ) = y_0 \cdot \Delta t \cdot {\mathop{\rm si}\nolimits} ( {\rm{\pi }} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} )\hspace{0.15 cm}\underline{ = 0}\;{\rm{.}}$$
(4) The spectral value at frequency $f = 0$ is not changed:
- $$Y_0 = y_0 \cdot \Delta t \hspace{0.15 cm}\underline{= 4 \,\rm{mV/Hz}}.$$
- But since the time function is now only half as wide, the spectrum widens by a factor of $2$:
- $$Y( {f = 1\;{\rm{kHz}}} ) = Y_0 \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{2}} ) \cdot {\mathop{\rm si}\nolimits} ( {{ {\rm{\pi }}}/{4}} ) \hspace{0.15 cm}\underline{= 2.293\,{\rm{mV/Hz}}}{\rm{.}}$$
- In subtask (3) this spectral value occurred at the frequency $f = 0.5\,\rm{kHz}$ aufgetreten.