Difference between revisions of "Aufgaben:Exercise 4.1: Different Duplex Methods for UMTS"

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'''(1)'''&nbsp; Richtig ist die <u>Aussage 2</u>:  
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'''(1)'''&nbsp; Correct is <u>statement 2</u>:  
*Ein Vertreter der zweiten Mobilfunkgeneration ist [[Examples_of_Communication_Systems/Allgemeine_Beschreibung_von_GSM|GSM]] (''Global System for Mobile Communications''), das bereits seit Anfang der 1990er Jahre verfügbar ist und auf dem Modulationsverfahren [[Modulation_Methods/Nichtlineare_digitale_Modulation#GMSK_.E2.80.93_Gaussian_Minimum_Shift_Keying|GMSK]] (''Gaussian Minimum Shift Keying'') basiert.  
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*A representative of the second generation of mobile communications is [[Examples_of_Communication_Systems/General_Description_of_GSM|"GSM"]] (''Global System for Mobile Communications''), which has been available since the early 1990s and is based on the modulation method [[Modulation_Methods/Non-Linear_Digital_Modulation#GMSK_.E2.80.93_Gaussian_Minimum_Shift_Keying|"GMSK"]] (''Gaussian Minimum Shift Keying'') is based.  
*Dagegen verwendet UMTS als Vielfachzugriffsverfahren [[Modulation_Methods/Aufgaben_und_Klassifizierung#FDMA.2C_TDMA_und_CDMA|CDMA]] (''Code Division Multiple Access'').
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*In contrast, UMTS uses as multiple access method [[Modulation_Methods/Tasks_and_Classification#FDMA.2C_TDMA.2C_and_CDMA|"CDMA"]] (''Code Division Multiple Access'').
*Das Mobilfunksystem der vierten Generation ist [[Mobile_Communications/Allgemeines_zum_Mobilfunkstandard_LTE|LTE]] (''Long Term Evolution''), das auf dem [[Modulation_Methods/Allgemeine_Beschreibung_von_OFDM|OFDM–Verfahren]] (''Orthogonal Frequency Division Multiplex'') beruht. Die LTE–Einführung begann Anfang der 2010er Jahre.
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*The fourth-generation mobile communications system is [[Mobile_Communications/General_Information_on_the_LTE_Mobile_Communications_Standard|"LTE"]] (''Long Term Evolution''), which is based on the [[Modulation_Methods/General_Description_of_OFDM|"OFDM method"]] (''Orthogonal Frequency Division Multiplex'') is based on. LTE rollout began in the early 2010s.
  
  
  
'''(2)'''&nbsp; Aus der Grafik auf der Angabenseite erkennt man, dass für $\rm UTRA–FDD$ die <u>letzte Aussage</u> zutrifft.
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'''(2)'''&nbsp; From the graph on the statement page, you can see that for $\rm UTRA\:FDD$, the <u>last statement</u> is true.
  
  
  
'''(3)'''&nbsp; Richtig sind die <u>Aussagen 1 und 2</u>:  
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'''(3)'''&nbsp; Correct are <u>statements 1 and 2</u>:  
*Gemäß der unteren Grafik erfolgt bei $\rm UTRA–FDD$ die Übertragung von Uplink und Downlink im gleichen Frequenzband.  
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*According to the diagram below, in $\rm UTRA\:FDD$ the uplink and downlink are transmitted in the same frequency band.  
*Die Trennung geschieht per Zeitmultiplex.
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*The separation is done by time division multiplexing.
  
  
  
'''(4)'''&nbsp; Laut Angabe belegen Uplink und Downlink jeweils $60 \ {\rm MHz} \ \Rightarrow \ B_{\rm ges}\hspace{0.15cm}\underline{ = 120 \ \rm MHz}$.
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'''(4)'''&nbsp; According to the specification, uplink and downlink occupy $60 \ {\rm MHz} each. \ \Rightarrow \ B_{\rm ges}\hspace{0.15cm}\underline{ = 120 \ \rm MHz}$.
  
  
  
'''(5)'''&nbsp; Es gilt jeweils $B_{\rm user} \hspace{0.15cm}\underline{ = 5 \ \rm MHz}$, sowohl im Uplink als auch im Downlink.
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'''(5)'''&nbsp; In each case $B_{\rm user} \hspace{0.15cm}\underline{ = 5 \ \rm MHz}$, both in uplink and downlink.
* Dieser Wert ergibt sich, wenn man die jeweilige gesamte Bandbreite für Uplink und Downlink  $(60 \ \rm MHz)$ durch die Anzahl der Kanäle $(12)$ dividiert.
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* This value is obtained by dividing the respective total bandwidth for uplink and downlink $(60 \ \rm MHz)$ by the number of channels $(12)$.
  
  
  
'''(6)'''&nbsp;Hier gilt wiederum $B_{\rm user} \hspace{0.15cm} \underline{= 5 \ \rm MHz}$, wobei aber nun diese Bandbreite per TDMA zwischen Uplink und Downlink aufgeteilt werden muss.
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'''(6)'''&nbsp;Here again $B_{\rm user} \hspace{0.15cm} \underline{= 5 \ \rm MHz}$, but now this bandwidth must be divided between uplink and downlink by TDMA.
  
  
  
'''(7)'''&nbsp; <u>Beide Aussagen sind richtig</u>:  
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'''(7)'''&nbsp; <u>Both statements are correct</u>:  
*Es ist nicht geplant, den $\rm TDD$–Modus in Europa anzubieten.
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*There are no plans to offer $\rm TDD$ mode in Europe.
*Bei asymmetrischem Dienst ist das Datenvolumen im Downlink deutlich größer als im Uplink. Hier würde $\rm TDD$–Modus Sinn machen.<br>Beispiele: &nbsp; Surfen und Downloads im Internet.  
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*For asymmetric service, the data volume in the downlink is significantly larger than in the uplink. Here $\rm TDD$ mode would make sense.<br>Examples: &nbsp; Surfing and downloads on the Internet.  
  
 
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Revision as of 22:53, 29 January 2023

UTRA FDD and UTRA TDD

Planned in the early 1990s and available in Europe since 2004  $\rm UMTS$  (Universal Mobile Telecommunications System )  is a so-called third-generation mobile communications system.

It uses in both directions - uplink  and  downlink - the multiple access method  "CDMA"  (Code Division Multiple Access).

The standardization essentially provides for two different modes:

  • ${\rm UTRA\:FDD}$  (UMTS Terrestrial Radio Access Frequency Division Duplex )  with twelve paired frequency bands for the uplink  $(1920 - 1980 \ \ \rm MHz)$  and the downlink  $(2110 - 2170 \ \ \rm MHz)$.


  • ${\rm UTRA\:TDD}$  (UMTS Terrestrial Radio Access Time Division Duplex )  provides four channels in the frequency band of  $1900 - 1920 \ \rm MHz$  and another at  $2020 - 2025 \ \rm MHz$.


There is currently no license for the band at  $2010 - 2020 \ \rm MHz$  . However, this is also reserved for UTRA TDD.

  • The diagram shows schematically the frequency band assignments of UTRA FDD (top) and UTRA TDD (bottom).
  • It can be seen that the two methods are quite different both in terms of multiple access and duplex implementation.





Hints:



Questions

1

Which of the following statements are true?

UMTS is a second-generation mobile communications system.
UMTS is a third-generation mobile communications system.
UMTS is a fourth-generation mobile communications system.

2

How are "uplink" and "downlink" separated in  $\rm UTRA\:FDD$ ?

The data is transmitted separately in time.
The data is transmitted in the same frequency band.
The data is transmitted in paired frequency bands.

3

How are "uplink" and "downlink" separated for  $\rm UTRA\:TDD$ ?

The data are transmitted separately in time.
The data is transmitted in the same frequency band.
The data is transmitted in paired frequency bands.

4

What is the total bandwidth allocated for  $\rm UTRA\:FDD$ ?

$B_{\rm ges} \ = \ $

$\ \rm MHz $

5

What bandwidth does each user occupy in  $\rm UTRA\:FDD$  both uplink and downlink after bandspreading?

$B_{\rm user} \ = \ $

$ \ \rm MHz $

6

What is the bandwidth of each user at  $\rm UTRA\:TDD$?

$B_{\rm user} \ = \ $

$ \ \rm MHz $

7

which statements are true?

In Europe, only the  $\rm FDD$ mode is used.
The  $\rm TDD$ mode is mainly suitable for asymmetric services.


Solution

(1)  Correct is statement 2:

  • A representative of the second generation of mobile communications is "GSM" (Global System for Mobile Communications), which has been available since the early 1990s and is based on the modulation method "GMSK" (Gaussian Minimum Shift Keying) is based.
  • In contrast, UMTS uses as multiple access method "CDMA" (Code Division Multiple Access).
  • The fourth-generation mobile communications system is "LTE" (Long Term Evolution), which is based on the "OFDM method" (Orthogonal Frequency Division Multiplex) is based on. LTE rollout began in the early 2010s.


(2)  From the graph on the statement page, you can see that for $\rm UTRA\:FDD$, the last statement is true.


(3)  Correct are statements 1 and 2:

  • According to the diagram below, in $\rm UTRA\:FDD$ the uplink and downlink are transmitted in the same frequency band.
  • The separation is done by time division multiplexing.


(4)  According to the specification, uplink and downlink occupy $60 \ {\rm MHz} each. \ \Rightarrow \ B_{\rm ges}\hspace{0.15cm}\underline{ = 120 \ \rm MHz}$.


(5)  In each case $B_{\rm user} \hspace{0.15cm}\underline{ = 5 \ \rm MHz}$, both in uplink and downlink.

  • This value is obtained by dividing the respective total bandwidth for uplink and downlink $(60 \ \rm MHz)$ by the number of channels $(12)$.


(6) Here again $B_{\rm user} \hspace{0.15cm} \underline{= 5 \ \rm MHz}$, but now this bandwidth must be divided between uplink and downlink by TDMA.


(7)  Both statements are correct:

  • There are no plans to offer $\rm TDD$ mode in Europe.
  • For asymmetric service, the data volume in the downlink is significantly larger than in the uplink. Here $\rm TDD$ mode would make sense.
    Examples:   Surfing and downloads on the Internet.