Difference between revisions of "Aufgaben:Exercise 4.13: Gaussian ACF and PSD"

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{{quiz-Header|Buchseite=Theory_of_Stochastic_Signals/Power-Spectral_Density
 
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[[File:P_ID411__Sto_A_4_13.png|right|]]
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[[File:P_ID411__Sto_A_4_13.png|right|frame|Two Gaussian ACFs]]
:Der hier betrachtete Zufallsprozess {<i>x<sub>i</sub></i>(<i>t</i>)} sei durch die oben skizzierte Autokorrelationsfunktion (AKF) charakterisiert:
+
Let the random process considered here&nbsp; $\{x_i(t)\}$&nbsp; be characterized by the auto-correlation function&nbsp; $\rm (ACF)$&nbsp; outlined above&nbsp; This random process is mean-free and the equivalent ACF duration is&nbsp; ${ {\rm \nabla}  }\tau_x = 5 \hspace{0.08cm} \rm &micro; s$:
:$$\varphi_x(\it \tau)=\rm 0.25 V^2\cdot \rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\tau}{/ 5 {\rm\mu}s })^2} .$$
+
:$$\varphi_x(\tau)=\rm 0.25 V^2\cdot \rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\tau}{/ 5 \hspace{0.08cm}{\rm &micro;}s })^2} .$$
 +
The bottom graph shows the ACF of the process&nbsp; $\{y_i(t)\}$.&nbsp; This reads with the equivalent ACF duration&nbsp; ${ {\rm \nabla}  }\tau_y = 10 \hspace{0.08cm} \rm &micro; s$:
 +
:$$ \varphi_y(\tau)=\rm 0.16 V^2 + \rm 0.09 V^2\cdot\rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\tau}/{\nabla \it \tau_y})^2} .$$
  
:Dieser Zufallsprozess ist mittelwertfrei und die &auml;quivalente AKF-Dauer betr&auml;gt &#8711;<i>&tau;<sub>x</sub></i> = 5 &mu;s.
+
In this exercise,&nbsp; the power-spectral densities of the two processes are sought.
  
:Im unteren Bild ist die AKF des Prozesses {<i>y<sub>i</sub></i>(<i>t</i>)} dargestellt. Diese lautet mit der &auml;quivalenten AKF-Dauer &nabla;<i>&tau;<sub>y</sub></i> = 10 &mu;s:
 
:$$ \varphi_y(\it \tau)=\rm 0.16 V^2 + \rm 0.09 V^2\cdot\rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\tau}/{\nabla \it \tau_y})^2} .$$
 
  
:In dieser Aufgabe werden die Leistungsdichtespektren der beiden Prozesse gesucht.
 
  
:<br><b>Hinweis:</b> Diese Aufgabe bezieht sich auf den Theorieteil von Kapitel 4.5. Zur L&ouml;sung dieser Aufgabe k&ouml;nnen Sie folgende Fourierkorrespondenz benutzen:
 
:$$\rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\it f}/{\rm \Delta\it f})^2}\bullet\!\!-\!\!\!-\!\!\!-\!\!\circ\, {\rm \Delta \it f} \cdot \rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\rm \Delta\it f} \cdot \it t )^{\rm 2}}.$$
 
  
 +
Hints:
 +
*This exercise belongs to the chapter&nbsp; [[Theory_of_Stochastic_Signals/Power-Spectral_Density|Power-spectral density]]&nbsp; $\rm (PSD)$.
 +
*Reference is also made to the chapter&nbsp; [[Theory_of_Stochastic_Signals/Auto-Correlation_Function|Auto-correlation function]]&nbsp; $\rm (ACF)$.
 +
*To solve this exercise you can use the following Fourier correspondence:
 +
:$$\rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\it f}/{\rm \Delta\it f})^2}\ \bullet\!\!-\!\!\!-\!\!\!-\!\!\circ\,\ {\rm \Delta \it f} \cdot \rm e^{-\pi \hspace{0.05cm}\cdot \hspace{0.05cm} ({\rm \Delta\it f} \hspace{0.05cm}\cdot \hspace{0.05cm}\it t {\rm )}^{\rm 2}}.$$
  
===Fragebogen===
+
 
 +
===Questions===
  
 
<quiz display=simple>
 
<quiz display=simple>
{Wie gro&szlig; ist die &auml;quivalente LDS-Bandbreite des Prozesses {<i>x<sub>i</sub></i>(<i>t</i>)}?
+
{What is the equivalent PSD bandwidth of the process&nbsp; $\{x_i(t)\}$?
 
|type="{}"}
 
|type="{}"}
$\nabla_\text{$f_x$}$ = { 200 3% } $.10^3 \ Hz$
+
$ {\rm \nabla} \hspace{-0.05cm} f_x \ = \ $ { 200 3% } $\ \rm kHz$
  
  
{Wie lautet <i>&Phi;<sub>x</sub></i>(<i>f</i>)? Geben Sie die LDS-Werte f&uuml;r <i>f</i> = 0 und <i>f</i> = 200 kHz ein.
+
{What is the power-spectral density&nbsp; ${\it \Phi}_x(f)$?&nbsp; Give the PSD values for&nbsp; $f= 0$&nbsp; and&nbsp; $f = 200 \hspace{0.08cm} \rm kHz$.
 
|type="{}"}
 
|type="{}"}
$\phi_x(f = 0)$ = { 1.25 3% } $.10^{-6} \ V^2/Hz$
+
${\it \Phi}_x(f = 0)\ = \ $ { 1.25 3% } $\ \cdot 10^{-6} \ \rm V^2\hspace{-0.1cm}/Hz$
$\phi_x(f = 200 kHz)$ = { 5.4 3% } $.10^{-8} \ V^2/Hz$
+
${\it \Phi}_x(f = 200 \hspace{0.08cm} \rm kHz)\ = \ $ { 0.054 3% } $\ \cdot 10^{-6} \ \rm V^2\hspace{-0.1cm}/Hz$
  
  
{Welche Aussagen gelten, wenn der Zufallsprozess keine periodischen Anteile besitzt? Vorausgesetzt wird desweiteren eine konstante Leistung.
+
{Which statements are valid,&nbsp; if the random process has no periodic parts?&nbsp; Furthermore,&nbsp; a constant power is assumed.
 
|type="[]"}
 
|type="[]"}
+ Die Prozessleistung ist das Integral &uuml;ber das LDS.
+
+ The process power is the integral over the PSD.
+ Bei mittelwertfreiem Prozess ist das LDS stets kontinuierlich.
+
+ If the process is zero mean,&nbsp; the PSD is always continuous.
- Je breiter die AKF, um so breiter ist auch das LDS.
+
- The wider the ACF,&nbsp; the wider the PSD.
+ Eine breitere AKF bewirkt h&ouml;here LDS-Werte.
+
+ A wider ACF results in higher PSD values.
 
 
  
{Berechnen Sie das Leistungsdichtespektrum <i>&Phi;<sub>y</sub></i>(<i>f</i>). Welche Werte ergeben sich f&uuml;r den kontinuierlichen LDS-Anteil bei <i>f</i> = 0 und <i>f</i> = 200 kHz?
+
{Calculate the power-spectral density&nbsp; ${\it \Phi}_y(f)$.&nbsp; What are the values for the continuous PSD component at&nbsp; $f= 0$&nbsp; and&nbsp; $f = 200 \hspace{0.08cm}  \rm kHz$?
 
|type="{}"}
 
|type="{}"}
$\phi_y(f = 0)$ = { 0.9 3% } $.10^{-6} \ V^2/Hz$
+
${\it \Phi}_y(f = 0)\ = \ $ { 0.9 3% } $\ \cdot 10^{-6} \ \rm V^2\hspace{-0.1cm}/Hz$
$\phi_y(f = 200 kHz)$ = { 6.44 3% } $.10^{-24} \ V^2/Hz$
+
${\it \Phi}_y(f = 200 \hspace{0.08cm} \rm kHz)\ = \ $ { 0.0165 3% } $\ \cdot 10^{-6} \hspace{0.05cm} \rm V^2\hspace{-0.1cm}/Hz$
  
  
{Welche der folgenden Aussagen stimmen bez&uuml;glich des Prozesses {<i>y<sub>i</sub></i>(<i>t</i>)}?
+
{Which of the following statements are true regarding the process&nbsp; $\{y_i(t)\}$?
 
|type="[]"}
 
|type="[]"}
- Das LDS beinhaltet einen Dirac bei der Frequenz  <i>f </i>= &#8711;<i>f<sub>y</sub></i>.
+
- The PSD involves a Dirac delta function at frequency $ f = {\rm \nabla} \hspace{-0.05cm} f_y$.
+ Das LDS beinhaltet einen Dirac bei der Frequenz <i>f</i> = 0.
+
+ The PSD involves a Dirac delta function at frequency $f= 0$.
- Diracgewicht und kontinuierliches LDS haben gleiche Einheit.
+
- The Dirac weight and the continuous PSD have the same unit.
 
 
  
  
 
</quiz>
 
</quiz>
  
===Musterlösung===
+
===Solution===
 
{{ML-Kopf}}
 
{{ML-Kopf}}
:<b>1.</b>&nbsp;&nbsp;Die &auml;quivalente LDS-Bandbreite ist der Kehrwert der &auml;quivalenten AKF-Dauer:  
+
'''(1)'''&nbsp; The equivalent PSD bandwidth is the reciprocal of the equivalent ACF duration:  
 
:$$\nabla f_x = 1 / \nabla \tau_x \hspace{0.15cm}\underline{= {\rm 200\hspace{0.1cm}kHz}}.$$
 
:$$\nabla f_x = 1 / \nabla \tau_x \hspace{0.15cm}\underline{= {\rm 200\hspace{0.1cm}kHz}}.$$
  
:<b>2.</b>&nbsp;&nbsp;Die angegebene Fourierkorrespondenz kann man wie folgt an die Aufgabenstellung anpassen:
 
:$$K\cdot{\rm e}^{-\pi({\tau}/{\nabla\tau_x})^2}\circ\!\!-\!\!\!-\!\!\!-\!\!\bullet\,\frac{\it K}{\nabla \it f_x}\cdot{\rm e}^{-\pi({f}/{\nabla f_x})^2}.$$
 
  
:Mit <i>K</i> = 0.25 V<sup>2</sup> und &nabla;<i>f</i><sub><i>x</i></sub> = 200 kHz erh&auml;lt man:
+
'''(2)'''&nbsp; One can adapt the given Fourier correspondence to the task as follows:
:$${\it \Phi_x}(f)=1.25\cdot\rm 10^{-\rm 6}\hspace{0.1cm}\frac{V^2}{Hz}\cdot\rm e^{-\pi({\it f}/{\nabla\it f_x})^2}.$$
+
:$$K\cdot{\rm e}^{-\pi({\tau}/{\nabla\tau_x})^2}\ \circ\!\!-\!\!\!-\!\!\!-\!\!\bullet\,\ \frac{\it K}{\nabla \it f_x}\cdot{\rm e}^{-\pi({f}/{\nabla f_x})^2}.$$
  
:Bei der Frequenz <i>f</i>  = 0 ergibt sich somit <u>1.25 &middot; 10<sup>&ndash;6</sup> V<sup>2</sup>/Hz</u>. Der LDS-Wert bei <i>f</i> = 200 kHz = &#8711;<i>f<sub>x</sub></i> ist um den Faktor e<sup>&ndash;&pi;</sup> kleiner, beträgt also <u>5.4 &middot; 10 <sup>&ndash;8</sup> V<sup>2</sup>/Hz</u>.
+
*With&nbsp; $K = 0.25 \hspace{0.05cm}\rm V^2$&nbsp; and&nbsp; $ {\rm \nabla} \hspace{-0.05cm} f_x = 200\hspace{0.05cm} \rm kHz$&nbsp; one obtains:
 +
:$${\it \Phi_x}(f)=1.25\cdot\rm 10^{-\rm 6}\hspace{0.1cm}\frac{V^2}{Hz}\cdot\rm e^{-\pi({\it f}/{\nabla\it f_x})^2}$$
 +
:$$\Rightarrow \hspace{0.3cm}{\it \Phi_x}(f = 0)=\hspace{0.15cm}\underline{\rm 1.25 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz},
 +
\hspace{0.5cm}{\it \Phi_x}(f = 200 \hspace{0.05cm} \rm kHz)=\hspace{0.15cm}\underline{\rm 0.054 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}.$$
  
:<b>3.</b>&nbsp;&nbsp;Ein mittelwertfreier Prozess hat stets ein kontinuierliches LDS zur Folge. Dieses ist um so schmaler, je breiter die AKF ist (Reziprozit&auml;tsgesetz). Da die Prozessleistung gleich dem Integral &uuml;ber das LDS ist, muss bei konstanter Prozessleistung eine breitere AKF (schmaleres LDS) durch h&ouml;here LDS-Werte ausgeglichen werden. Ein Gleichanteil oder periodische Anteile führen stets zu Diracfunktionen im LDS; ansonsten ist das LDS stets wertkontinuierlich. Richtig sind die <u>Lösungsvorschläge 1, 2 und 4</u>.
 
  
:<b>4.</b>&nbsp;&nbsp;Analog zu Teilaufgabe (2) gilt mit &#8711;<i>f</i><sub><i>y</i></sub> = 100 kHz:
+
'''(3)'''&nbsp; Correct are the&nbsp; <u>solutions 1, 2, and 4</u>:
 +
*A mean-free process always results in a continuous PSD.&nbsp; This is narrower the wider the ACF is&nbsp; ("Reciprocity Law").
 +
*The process power is equal to the integral of the PSD.
 +
*Therefore,&nbsp; at constant power,&nbsp; a wider ACF&nbsp; (narrower PSD)&nbsp; must be compensated by higher PSD values.
 +
*A DC component or periodic components always result in Dirac delta functions in the PSD;&nbsp; otherwise, the PSD is always continuous in value.
 +
 
 +
 
 +
 
 +
'''(4)'''&nbsp; Analogous to subtask&nbsp; '''(2)'''&nbsp; holds with&nbsp; $ {\rm \nabla} \hspace{-0.05cm} f_y = 100\hspace{0.05cm} \rm kHz$:
 
:$${\it \Phi_y}(f)=\frac{\rm 0.09 V^2}{\nabla\it f_y}\cdot\rm e^{-\pi({\it f}/{\nabla\it f_y})^2}+\it m_y^{\rm 2}\cdot\delta(f).$$
 
:$${\it \Phi_y}(f)=\frac{\rm 0.09 V^2}{\nabla\it f_y}\cdot\rm e^{-\pi({\it f}/{\nabla\it f_y})^2}+\it m_y^{\rm 2}\cdot\delta(f).$$
  
:Aufgrund des Gleichanteils gibt es zus&auml;tzlich zum kontinuierlichen LDS-Anteil noch einen Dirac bei der Frequenz <i>f</i> = 0. Der kontinuierliche LDS&ndash;Anteil bei <i>f</i> = 0 betr&auml;gt <u>0.9 &middot; 10<sup>&ndash;6</sup> V<sup>2</sup>/Hz</u>. Der Anteil bei <i>f</i> = 2 &middot; &#8711;<i>f<sub>y</sub></i> = 200 kHz ist deutlich, nämlich um den Faktor e<sup>&ndash;4</sup> &asymp; 7 &middot; 10<sup>&ndash;18</sup> geringer. Hier lautet das LDS&ndash;Ergebnis: <u>6.44 &middot; 10<sup>&ndash;24</sup> V<sup>2</sup>/Hz</u>.
+
*Because of the DC component,&nbsp; there is a Dirac delta function at frequency&nbsp; $f = 0$&nbsp; in addition to the continuous PSD component.  
 +
*The continuous PSD&ndash;part at $f= 0$ is&nbsp; ${\it \Phi_y}(f = 0)=\hspace{0.15cm}\underline{\rm 0.9 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}.$
 +
*The continuous PSD&ndash;part at&nbsp; $f = 2 \cdot {\rm \nabla} \hspace{-0.05cm} f_y = 200 \hspace{0.05cm}\rm kHz$&nbsp; is lower by a factor&nbsp; ${\rm e}^{-4} \approx 0.0183$ &nbsp; &rArr; &nbsp; ${\it \Phi_y}(f )=\hspace{0.15cm}\underline{\rm 0.0165 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}.$
 +
 
  
:<b>5.</b>&nbsp;&nbsp;Das LDS eines mittelwertbehafteten Prozesses beinhaltet allgemein eine Diracfunktion bei <i>f</i> = 0 mit Gewicht <i>m<sub>y</sub></i><sup>2</sup>; im vorliegenden Fall ist dieser Wert gleich 0.16 V<sup>2</sup>. Da &delta;(<i>f</i>) die Einheit 1/Hz = s besitzt, unterscheiden sich die Einheiten des kontinuierlichen und des diskreten LDS-Anteils. Richtig ist also <u>nur der zweite Lösungsvorschlag</u>.
+
'''(5)'''&nbsp; Correct is&nbsp; <u>only the second proposed solution</u>:
 +
*The PSD of a mean-valued process generally involves a Dirac delta function at $f=0$&nbsp; with weight&nbsp; $m_y^2$.
 +
*In the present case,&nbsp; this value is equal to&nbsp; $0.16 \ \rm V^2$.  
 +
*Since&nbsp; $\delta(f)$&nbsp; has unit&nbsp; $\rm 1/Hz = s$,&nbsp; the units of the continuous and discrete PSD components differ.  
  
 
{{ML-Fuß}}
 
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[[Category:Aufgaben zu Stochastische Signaltheorie|^4.5 Leistungsdichtespektrum (LDS)^]]
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[[Category:Theory of Stochastic Signals: Exercises|^4.5 Power-Spectral Density^]]

Latest revision as of 16:19, 25 March 2022

Two Gaussian ACFs

Let the random process considered here  $\{x_i(t)\}$  be characterized by the auto-correlation function  $\rm (ACF)$  outlined above  This random process is mean-free and the equivalent ACF duration is  ${ {\rm \nabla} }\tau_x = 5 \hspace{0.08cm} \rm µ s$:

$$\varphi_x(\tau)=\rm 0.25 V^2\cdot \rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\tau}{/ 5 \hspace{0.08cm}{\rm µ}s })^2} .$$

The bottom graph shows the ACF of the process  $\{y_i(t)\}$.  This reads with the equivalent ACF duration  ${ {\rm \nabla} }\tau_y = 10 \hspace{0.08cm} \rm µ s$:

$$ \varphi_y(\tau)=\rm 0.16 V^2 + \rm 0.09 V^2\cdot\rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\tau}/{\nabla \it \tau_y})^2} .$$

In this exercise,  the power-spectral densities of the two processes are sought.



Hints:

$$\rm e^{-\pi \hspace{0.03cm}\cdot \hspace{0.03cm} ({\it f}/{\rm \Delta\it f})^2}\ \bullet\!\!-\!\!\!-\!\!\!-\!\!\circ\,\ {\rm \Delta \it f} \cdot \rm e^{-\pi \hspace{0.05cm}\cdot \hspace{0.05cm} ({\rm \Delta\it f} \hspace{0.05cm}\cdot \hspace{0.05cm}\it t {\rm )}^{\rm 2}}.$$


Questions

1

What is the equivalent PSD bandwidth of the process  $\{x_i(t)\}$?

$ {\rm \nabla} \hspace{-0.05cm} f_x \ = \ $

$\ \rm kHz$

2

What is the power-spectral density  ${\it \Phi}_x(f)$?  Give the PSD values for  $f= 0$  and  $f = 200 \hspace{0.08cm} \rm kHz$.

${\it \Phi}_x(f = 0)\ = \ $

$\ \cdot 10^{-6} \ \rm V^2\hspace{-0.1cm}/Hz$
${\it \Phi}_x(f = 200 \hspace{0.08cm} \rm kHz)\ = \ $

$\ \cdot 10^{-6} \ \rm V^2\hspace{-0.1cm}/Hz$

3

Which statements are valid,  if the random process has no periodic parts?  Furthermore,  a constant power is assumed.

The process power is the integral over the PSD.
If the process is zero mean,  the PSD is always continuous.
The wider the ACF,  the wider the PSD.
A wider ACF results in higher PSD values.

4

Calculate the power-spectral density  ${\it \Phi}_y(f)$.  What are the values for the continuous PSD component at  $f= 0$  and  $f = 200 \hspace{0.08cm} \rm kHz$?

${\it \Phi}_y(f = 0)\ = \ $

$\ \cdot 10^{-6} \ \rm V^2\hspace{-0.1cm}/Hz$
${\it \Phi}_y(f = 200 \hspace{0.08cm} \rm kHz)\ = \ $

$\ \cdot 10^{-6} \hspace{0.05cm} \rm V^2\hspace{-0.1cm}/Hz$

5

Which of the following statements are true regarding the process  $\{y_i(t)\}$?

The PSD involves a Dirac delta function at frequency $ f = {\rm \nabla} \hspace{-0.05cm} f_y$.
The PSD involves a Dirac delta function at frequency $f= 0$.
The Dirac weight and the continuous PSD have the same unit.


Solution

(1)  The equivalent PSD bandwidth is the reciprocal of the equivalent ACF duration:

$$\nabla f_x = 1 / \nabla \tau_x \hspace{0.15cm}\underline{= {\rm 200\hspace{0.1cm}kHz}}.$$


(2)  One can adapt the given Fourier correspondence to the task as follows:

$$K\cdot{\rm e}^{-\pi({\tau}/{\nabla\tau_x})^2}\ \circ\!\!-\!\!\!-\!\!\!-\!\!\bullet\,\ \frac{\it K}{\nabla \it f_x}\cdot{\rm e}^{-\pi({f}/{\nabla f_x})^2}.$$
  • With  $K = 0.25 \hspace{0.05cm}\rm V^2$  and  $ {\rm \nabla} \hspace{-0.05cm} f_x = 200\hspace{0.05cm} \rm kHz$  one obtains:
$${\it \Phi_x}(f)=1.25\cdot\rm 10^{-\rm 6}\hspace{0.1cm}\frac{V^2}{Hz}\cdot\rm e^{-\pi({\it f}/{\nabla\it f_x})^2}$$
$$\Rightarrow \hspace{0.3cm}{\it \Phi_x}(f = 0)=\hspace{0.15cm}\underline{\rm 1.25 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}, \hspace{0.5cm}{\it \Phi_x}(f = 200 \hspace{0.05cm} \rm kHz)=\hspace{0.15cm}\underline{\rm 0.054 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}.$$


(3)  Correct are the  solutions 1, 2, and 4:

  • A mean-free process always results in a continuous PSD.  This is narrower the wider the ACF is  ("Reciprocity Law").
  • The process power is equal to the integral of the PSD.
  • Therefore,  at constant power,  a wider ACF  (narrower PSD)  must be compensated by higher PSD values.
  • A DC component or periodic components always result in Dirac delta functions in the PSD;  otherwise, the PSD is always continuous in value.


(4)  Analogous to subtask  (2)  holds with  $ {\rm \nabla} \hspace{-0.05cm} f_y = 100\hspace{0.05cm} \rm kHz$:

$${\it \Phi_y}(f)=\frac{\rm 0.09 V^2}{\nabla\it f_y}\cdot\rm e^{-\pi({\it f}/{\nabla\it f_y})^2}+\it m_y^{\rm 2}\cdot\delta(f).$$
  • Because of the DC component,  there is a Dirac delta function at frequency  $f = 0$  in addition to the continuous PSD component.
  • The continuous PSD–part at $f= 0$ is  ${\it \Phi_y}(f = 0)=\hspace{0.15cm}\underline{\rm 0.9 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}.$
  • The continuous PSD–part at  $f = 2 \cdot {\rm \nabla} \hspace{-0.05cm} f_y = 200 \hspace{0.05cm}\rm kHz$  is lower by a factor  ${\rm e}^{-4} \approx 0.0183$   ⇒   ${\it \Phi_y}(f )=\hspace{0.15cm}\underline{\rm 0.0165 \cdot 10^{-6} \hspace{0.1cm} V^2\hspace{-0.1cm}/Hz}.$


(5)  Correct is  only the second proposed solution:

  • The PSD of a mean-valued process generally involves a Dirac delta function at $f=0$  with weight  $m_y^2$.
  • In the present case,  this value is equal to  $0.16 \ \rm V^2$.
  • Since  $\delta(f)$  has unit  $\rm 1/Hz = s$,  the units of the continuous and discrete PSD components differ.