Difference between revisions of "Aufgaben:Exercise 4.5: Pseudo Noise Modulation"

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@@ Line 2: / Line 2: @@
 {{quiz-Header|Buchseite=Examples_of_Communication_Systems/Telecommunications_Aspects_of_UMTS}}
-[[File:EN_Bei_A_4_5.png|right|frame|Equivalent circuit of PN modulation and BPSK]]
+[[File:EN_Bei_A_4_5.png|right|frame|Models of PN modulation (top) and BPSK (bottom)]]
-The graph above shows the equivalent circuit of "pseudo-noise" modulation&nbsp; (&nbsp; ''Direct Sequence Spread Spectrum'', abbreviated&nbsp; '''DS-SS''')&nbsp; in the equivalent low-pass region. $n(t)$&nbsp; denotes AWGN noise.
+The upper diagram shows the equivalent circuit of&nbsp; $\rm PN$&nbsp; modulation&nbsp; $($Direct-Sequence Spread Spectrum, abbreviated&nbsp; $\rm DS–SS)$&nbsp; in the equivalent low-pass range,&nbsp; based on AWGN noise &nbsp;$n(t)$.&nbsp;
-Below is sketched the low pass model of&nbsp; [[Modulation_Methods/Linear_Digital_Modulation#BPSK_.E2.80.93_Binary_Phase_Shift_Keying|"Binary Phase Shift Keying"]].
-*The low-pass transmit signal&nbsp; $s(t)$&nbsp; is set equal to the rectangular source signal&nbsp; $q(t) ∈ \{+1, -1\}$&nbsp; with rectangular duration&nbsp; $T$&nbsp; only for reasons of uniform representation.
-*The integrator function can be written as follows:
-:$$d (\nu T) = \frac{1}{T} \cdot \hspace{0.03cm} \int_{(\nu -1 )T }^{\nu T} \hspace{-0.3cm} b (t )\hspace{0.1cm} {\rm d}t \hspace{0.05cm}.$$
-*The two models differ by multiplication by the&nbsp; $±1$-spread signal&nbsp; $c(t)$&nbsp; at the transmitter and receiver, where only the degree of spread&nbsp; $J$&nbsp; is known from&nbsp; $c(t)$&nbsp;.
-*For the solution of this exercise, the specification of the specific spreading sequence&nbsp; (M sequence or Walsh function)&nbsp; is not important.
-What needs to be investigated is whether the lower BPSK model can also be applied in PN modulation and whether the BPSK error probability
-:$$p_{\rm B} = {\rm Q} \left( \hspace{-0.05cm} \sqrt { {2 \cdot E_{\rm B}}/{N_{\rm 0}} } \hspace{-0.05cm} \right )$$
-is also valid for PN modulation, or how to modify the given equation.
+Shown below is the low-pass model of binary phase shift keying&nbsp; $\rm (BPSK)$.&nbsp;
+*The low-pass transmitted signal &nbsp;$s(t)$&nbsp; is set equal to the rectangular source signal &nbsp;$q(t) ∈ \{+1, –1\}$&nbsp; with rectangular duration &nbsp;$T$&nbsp; for reasons of uniformity.
+*The function of the integrator can be described as follows:
+:$$d (\nu T) = \frac{1}{T} \cdot \hspace{-0.1cm} \int_{(\nu -1 )T }^{\nu T} \hspace{-0.3cm} b (t )\hspace{0.1cm} {\rm d}t \hspace{0.05cm}.$$
+*The two models differ by multiplication with the &nbsp;$±1$&nbsp; spreading signal &nbsp;$c(t)$&nbsp; at transmitter and receiver,&nbsp; where only the spreading factor &nbsp;$J$&nbsp; is known from &nbsp;$c(t)$.&nbsp;
+It has to be investigated whether the lower BPSK model can also be used for PN modulation and whether the BPSK error probability
+:$$p_{\rm B} = {\rm Q} \left( \hspace{-0.05cm} \sqrt { {2 \cdot E_{\rm B}}/{N_{\rm 0}} } \hspace{0.05cm} \right )$$
+is also valid for PN modulation,&nbsp; or how the given equation should be modified.
@@ Line 26: / Line 22: @@
+Notes:
+*This exercise mostly refers to the page&nbsp; [[Examples_of_Communication_Systems/Telecommunications_Aspects_of_UMTS|"Telecommunications Aspects of UMTS"]].
-Hints:
+*For the solution of this exercise,&nbsp; the specification of the specific spreading sequence&nbsp; $($M-sequence or Walsh function$)$&nbsp; is not important.
-*This exercise belongs to the chapter&nbsp; [[Examples_of_Communication_Systems/Telecommunications_Aspects_of_UMTS|"Telecommunications Aspects of UMTS"]].
-*The CDMA method used in UMTS also goes by the name "PN modulation".
-*The nomenclature used in this exercise is partly based on the chapter&nbsp; [[Modulation_Methods/Direct-Sequence_Spread_Spectrum_Modulation|"PN Modulation"]]&nbsp; in the book "Modulation Methods".
+===Questions===
-===Fragebogen===
 <quiz display=simple>
+{Which detection signal values are possible with BPSK&nbsp; (in the noise-free case)?
-{Welche Detektionssignalwerte sind bei BPSK  im rauschfreien Fall möglich?
 |type="[]"}
-- $d(\nu T)$&nbsp; ist gaußverteilt.
+- $d(νT)$&nbsp; can be Gaussian distributed.
-- $d(\nu T)$&nbsp; kann die Werte&nbsp; $+1, \ 0$&nbsp; und&nbsp; $–1$&nbsp; annehmen.
+- $d(νT)$&nbsp; can take the values &nbsp;$+1$, &nbsp;$0$&nbsp; and &nbsp;$-1$.&nbsp;
-+ Es sind nur die Werte&nbsp; $d(\nu T) = +1$&nbsp; und&nbsp; $d(\nu T) = -1$&nbsp; möglich.
++ Only the values &nbsp;$d(νT) = +1$&nbsp; and &nbsp;$d(νT) = -1$&nbsp; are possible.
-{Welche Werte sind bei PN–Modulation im rauschfreien Fall möglich?
+{Which values are possible in PN modulation&nbsp; (in the noise-free)&nbsp; case?
 |type="[]"}
-- $d(\nu T)$&nbsp; ist gaußverteilt.
+- $d(νT)$&nbsp; can be Gaussian distributed.
-- $d(\nu T)$&nbsp; kann die Werte&nbsp; $+1, \ 0$&nbsp; und&nbsp; $–1$&nbsp; annehmen.
+- $d(νT)$&nbsp; can take the values &nbsp;$+1$, &nbsp;$0$&nbsp; and &nbsp;$-1$.&nbsp;
-+ Es sind nur die Werte&nbsp; $d(\nu T) = +1$&nbsp; und&nbsp; $d(\nu T) = -1$&nbsp; möglich.
++ Only the values &nbsp;$d(νT) = +1$&nbsp; and &nbsp;$d(νT) = -1$&nbsp; are possible.
-{Welche Modifikation muss am BPSK–Modell vorgenommen werden, damit es auch für die PN–Modulation anwendbar ist?
+{What modification must be made to the BPSK model to make it applicable to PN modulation?
 |type="[]"}
-+ Das Rauschen&nbsp; $n(t)$&nbsp; muss durch&nbsp; $n\hspace{0.05cm}'(t) = n(t) \cdot c(t)$&nbsp; ersetzt werden.
++ The noise &nbsp;$n(t)$&nbsp; must be replaced by &nbsp;$n'(t) = n(t) · c(t)$.&nbsp;
-- Die Integration muss nun über&nbsp; $J \cdot T$&nbsp; erfolgen.
+- The integration must now be done over &nbsp;$J · T$.&nbsp;
-- Die Rauschleistung muss um den Faktor&nbsp; $J$&nbsp; vermindert werden.
+- The noise power &nbsp;$σ_n^2$&nbsp; must be reduced by a factor of &nbsp;$J$.&nbsp;
-{Welche Bitfehlerwahrscheinlichkeit&nbsp; $p_{\rm B}$&nbsp; ergibt sich für&nbsp; $10 \cdot {\rm lg} \ (E_{\rm B}/N_{0}) = 6 \ \rm dB$&nbsp; bei PN–Modulation? <br>''Hinweis:'' &nbsp; Bei BPSK gilt in diesem Fall: &nbsp; $p_{\rm B} \approx 2.3 \cdot 10^{–3}$.
+{What is the bit error probability &nbsp;$(p_{\rm B})$&nbsp; for &nbsp;$10 \lg \  (E_{\rm B}/N_0) = 6\ \rm  dB$&nbsp; for PN modulation? &nbsp; <u>Note:</u> &nbsp; For BPSK applies in this case: &nbsp; $p_{\rm B} ≈ 2.3 · 10^{–3}$.
 |type="()"}
-- Je größer&nbsp; $J$&nbsp; gewählt wird, desto kleiner ist&nbsp; $p_{\rm B}$.
+- The larger &nbsp;$J$&nbsp; is chosen, the smaller &nbsp;$p_{\rm B}$ is.
-- Je größer&nbsp; $J$&nbsp; gewählt wird, desto größer ist&nbsp; $p_{\rm B}$.
+- The larger &nbsp;$J$&nbsp; is chosen, the larger &nbsp;$p_{\rm B}$ is.
-+ Es ergibt sich unabhängig von&nbsp; $J$&nbsp; stets der Wert&nbsp; $2.3 \cdot 10^{–3}$.
++ Independent of &nbsp;$J$,&nbsp; the value &nbsp;$p_{\rm B} ≈ 2.3 · 10^{–3}$ is always obtained.
 </quiz>
-===Musterlösung===
+===Solution===
 {{ML-Kopf}}
+'''(1)'''&nbsp; The&nbsp; <u>last solution</u>&nbsp; is correct:
+*We are dealing here with an optimal receiver.
+*Without noise,&nbsp; the signal&nbsp; $b(t)$&nbsp; within each bit is constantly equal to&nbsp; $+1$&nbsp; or&nbsp; $-1$.
+*From the given equation for the integrator
+:$$d (\nu T) = \frac{1}{T} \cdot \hspace{-0.1cm} \int_{(\nu -1 )T }^{\nu T} \hspace{-0.3cm} b (t )\hspace{0.1cm} {\rm d}t $$
+:it follows that&nbsp; $d(νT)$&nbsp; can take only the values&nbsp; $+1$&nbsp; and&nbsp; $-1$.&nbsp;
-'''(1)'''&nbsp; Richtig ist der <u>letzte Lösungsvorschlag</u>:
-*Es handelt sich hier um einen optimalen Empfänger.
-*Ohne Rauschen ist Signal&nbsp; $b(t)$&nbsp; innerhalb eines jeden Bits konstant gleich $+1$ oder $-1$.
-*Aus der angegebenen Gleichung für den Integrator folgt, dass&nbsp; $d(\nu T)$&nbsp; nur die Werte $±1$ annehmen kann:
-:$$d (\nu T) = \frac{1}{T} \cdot \hspace{-0.1cm} \int_{(\nu -1 )T }^{\nu T} \hspace{-0.3cm} b (t )\hspace{0.1cm} {\rm d}t.$$
+'''(2)'''&nbsp; Again the&nbsp; <u>last solution</u>&nbsp; is correct:
+* In the noise-free and interference-free case &nbsp; ⇒ &nbsp; $n(t) = 0$,&nbsp; the twofold multiplication by&nbsp; $c(t) ∈ \{+1, –1\}$&nbsp; can be omitted,
+*so that the upper model is identical to the lower model.
-'''(2)'''&nbsp; Richtig ist wieder der <u>letzte Lösungsvorschlag</u>:
-*Im rauschfreien Fall &nbsp; &rArr; &nbsp; $n(t) = 0$ kann auf die zweifache Multiplikation mit&nbsp; $c(t) ∈ \{+1, –1\} \ \Rightarrow \  c(t)^{2} = 1$&nbsp; verzichtet werden,
-*so dass das obere Modell mit dem unteren Modell identisch ist.
+'''(3)'''&nbsp; <u>Solution 1</u>&nbsp; is correct:
+*Since both models are identical in the noise-free case,&nbsp; only the noise signal has to be adjusted: &nbsp; $n'(t) = n(t) · c(t)$.
-'''(3)'''&nbsp;  Zutreffend ist nur der <u>Lösungsvorschlag 1</u>:
+*In contrast,&nbsp; the other two solutions are not applicable:
-*Da beide Modelle im rauschfreien Fall identisch sind, muss nur das Rauschsignal angepasst werden: &nbsp; $n\hspace{0.05cm}'(t) = n(t) \cdot c(t)$.
-*Die Vorschläge 2 und 3 sind dagegen nicht zutreffend: &nbsp; Die Integration muss weiterhin über&nbsp; $T = J \cdot T_{\rm c}$&nbsp; erfolgen und die PN–Modulation verringert das AWGN–Rauschen nicht.
+*The integration must still be done over&nbsp; $T = J · T_c$&nbsp; and the PN modulation does not reduce the AWGN noise.
-'''(4)'''&nbsp; Richtig ist der <u>letzte Lösungsvorschlag</u>.:
-*Multipliziert man das AWGN–Rauschen mit dem hochfrequenten&nbsp; $±1$–Signal&nbsp; $c(t)$, so ist das Rauschen ebenfalls gaußförmig und weiß.
-*Wegen&nbsp; $E[c^{2}(t)] = 1$&nbsp; wird auch die Rauschvarianz nicht verändert. Die für BPSK gültige Gleichung
-:$$p_{\rm B} = {\rm Q} \left( \hspace{-0.05cm} \sqrt { {2 \cdot E_{\rm B}}/{N_{\rm 0}} } \hspace{0.05cm} \right )$$
-:ist somit auch bei der PN&ndash;Modulation anwendbar und zwar unabhängig vom Spreizfaktor&nbsp; $J$&nbsp; und von der spezifischen Spreizfolge.
-:&nbsp; &rArr; &nbsp; '''Bei AWGN&ndash;Rauschen wird also die Fehlerwahrscheinlichkeit durch Bandspreizung weder vergrößert noch verkleinert'''.
+'''(4)'''&nbsp; The&nbsp; <u>last solution</u>&nbsp; is correct:
-{{ML-Fuß}}
+*Multiplying the AWGN noise by the high-frequency&nbsp; $±1$ signal&nbsp; $c(t)$,&nbsp; the product is also Gaussian and white.
+*Because of &nbsp;${\rm E}\big[c^2(t)\big] = 1$,&nbsp; the noise variance is not changed either.&nbsp; Thus:
+*The equation&nbsp; $p_{\rm B} = {\rm Q} \left( \hspace{-0.05cm} \sqrt {{2 E_{\rm B}}/{N_{\rm 0}} } \hspace{0.05cm} \right )$&nbsp; valid for BPSK is also applicable for PN modulation,&nbsp; independent of spreading factor&nbsp; $J$&nbsp; and specific spreading sequence.
+*Ergo:&nbsp; For AWGN noise,&nbsp; band spreading neither increases nor decreases the error probability.
+{{ML-Fuß}}
-[[Category:Examples of Communication Systems: Exercises|^4.3 Telecommunications Aspects
-^]]
+[[Category:Examples of Communication Systems: Exercises|^4.3 Telecommunications Aspects^]]

Latest revision as of 19:22, 4 March 2023

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Models of PN modulation (top) and BPSK (bottom)

The upper diagram shows the equivalent circuit of $\rm PN$ modulation $($Direct-Sequence Spread Spectrum, abbreviated $\rm DS–SS)$ in the equivalent low-pass range, based on AWGN noise $n(t)$.

Shown below is the low-pass model of binary phase shift keying $\rm (BPSK)$.

The low-pass transmitted signal $s(t)$ is set equal to the rectangular source signal $q(t) ∈ \{+1, –1\}$ with rectangular duration $T$ for reasons of uniformity.

The function of the integrator can be described as follows:

$$d (\nu T) = \frac{1}{T} \cdot \hspace{-0.1cm} \int_{(\nu -1 )T }^{\nu T} \hspace{-0.3cm} b (t )\hspace{0.1cm} {\rm d}t \hspace{0.05cm}.$$

The two models differ by multiplication with the $±1$ spreading signal $c(t)$ at transmitter and receiver, where only the spreading factor $J$ is known from $c(t)$.

It has to be investigated whether the lower BPSK model can also be used for PN modulation and whether the BPSK error probability

$$p_{\rm B} = {\rm Q} \left( \hspace{-0.05cm} \sqrt { {2 \cdot E_{\rm B}}/{N_{\rm 0}} } \hspace{0.05cm} \right )$$

is also valid for PN modulation, or how the given equation should be modified.

Notes:

This exercise mostly refers to the page "Telecommunications Aspects of UMTS".

For the solution of this exercise, the specification of the specific spreading sequence $($M-sequence or Walsh function$)$ is not important.

Questions

Which detection signal values are possible with BPSK (in the noise-free case)?

	$d(νT)$ can be Gaussian distributed.
	$d(νT)$ can take the values $+1$, $0$ and $-1$.
	Only the values $d(νT) = +1$ and $d(νT) = -1$ are possible.

Which values are possible in PN modulation (in the noise-free) case?

	$d(νT)$ can be Gaussian distributed.
	$d(νT)$ can take the values $+1$, $0$ and $-1$.
	Only the values $d(νT) = +1$ and $d(νT) = -1$ are possible.

What modification must be made to the BPSK model to make it applicable to PN modulation?

	The noise $n(t)$ must be replaced by $n'(t) = n(t) · c(t)$.
	The integration must now be done over $J · T$.
	The noise power $σ_n^2$ must be reduced by a factor of $J$.

What is the bit error probability $(p_{\rm B})$ for $10 \lg \ (E_{\rm B}/N_0) = 6\ \rm dB$ for PN modulation? Note: For BPSK applies in this case: $p_{\rm B} ≈ 2.3 · 10^{–3}$.

	The larger $J$ is chosen, the smaller $p_{\rm B}$ is.
	The larger $J$ is chosen, the larger $p_{\rm B}$ is.
	Independent of $J$, the value $p_{\rm B} ≈ 2.3 · 10^{–3}$ is always obtained.

Solution

(1) The last solution is correct:

We are dealing here with an optimal receiver.

Without noise, the signal $b(t)$ within each bit is constantly equal to $+1$ or $-1$.

From the given equation for the integrator

$$d (\nu T) = \frac{1}{T} \cdot \hspace{-0.1cm} \int_{(\nu -1 )T }^{\nu T} \hspace{-0.3cm} b (t )\hspace{0.1cm} {\rm d}t $$

it follows that $d(νT)$ can take only the values $+1$ and $-1$.

(2) Again the last solution is correct:

In the noise-free and interference-free case ⇒ $n(t) = 0$, the twofold multiplication by $c(t) ∈ \{+1, –1\}$ can be omitted,

so that the upper model is identical to the lower model.

(3) Solution 1 is correct:

Since both models are identical in the noise-free case, only the noise signal has to be adjusted: $n'(t) = n(t) · c(t)$.

In contrast, the other two solutions are not applicable:

The integration must still be done over $T = J · T_c$ and the PN modulation does not reduce the AWGN noise.

(4) The last solution is correct:

Multiplying the AWGN noise by the high-frequency $±1$ signal $c(t)$, the product is also Gaussian and white.

Because of ${\rm E}\big[c^2(t)\big] = 1$, the noise variance is not changed either. Thus:

The equation $p_{\rm B} = {\rm Q} \left( \hspace{-0.05cm} \sqrt {{2 E_{\rm B}}/{N_{\rm 0}} } \hspace{0.05cm} \right )$ valid for BPSK is also applicable for PN modulation, independent of spreading factor $J$ and specific spreading sequence.

Ergo: For AWGN noise, band spreading neither increases nor decreases the error probability.

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