Difference between revisions of "Aufgaben:Exercise 3.3Z: GSM 900 and GSM 1800"

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{{quiz-Header|Buchseite=Beispiele von Nachrichtensystemen/Funkschnittstelle
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{{quiz-Header|Buchseite=Examples_of_Communication_Systems/Radio_Interface
 
}}  
 
}}  
  
[[File:P_ID1225__Bei_Z_3_3.png|right|frame|GSM 900 und GSM 1800]]
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[[File:EN_Bei_Z_3_3.png|right|frame|$\rm GSM \ 900$  and  $\rm GSM \ 1800$ ]]
Der seit $1992$ in Europa etablierte Mobilfunkstandard GSM (Global System for Mobile Communications) nutzt Frequenz– und Zeitmultiplex, um mehreren Nutzern die Kommunikation in einer Zelle zu ermöglichen.
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The mobile communications standard  $\rm GSM$  ("Global System for Mobile Communications")  established in Europe since 1992 uses frequency and time division multiplexing to enable multiple users to communicate in one cell.
  
Nachfolgend sind wichtige Kenngrößen des in der Grafik dargestellten Systems GSM $900$ in etwas vereinfachter Form angegeben.
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The following are important characteristics of the system  $\rm GSM \ 900$  shown in the diagram in somewhat simplified form.
*Das Frequenzband des Uplinks (die Verbindung von der Mobil– zur Basisstation) liegt zwischen $890$ und $915 \ \rm  MHz$.
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*The frequency band of the uplink  $($the connection from the mobile station to the base station$)$ is between  $890\ \rm MHz$  and  $915 \ \rm MHz$.
*Unter Berücksichtigung der Guard–Bänder an den beiden Enden steht somit für den Uplink eine Gesamtbandbreite von $24.8 \ \rm MHz$ zur Verfügung.
 
*Dieses Band wird von insgesamt $K_{\rm F}$ Teilkanälen (Radio Frequency Channels) genutzt, die mit jeweiligem Frequenzabstand $200 \ \rm kHz$ nebeneinander liegen. Die Nummerierung geschieht mit der Laufvariablen $k_{\rm F}$.
 
*Der Frequenzbereich für den Downlink (die Verbindung von der Basis– zur Mobilstation) liegt um den Duplexabstand $45 \ \rm MHz$ oberhalb des Uplinks und ist ansonsten in gleicher Weise wie dieser aufgebaut.
 
*Jeder dieser FDMA–Teilkanäle wird gleichzeitig von $K_{\rm T} = 8$ Teilnehmern im Zeitmultiplex (''Time Division Multiple Access'', TDMA) genutzt.
 
  
 +
*Taking into account the guard bands at both ends,  a total bandwidth of  $24.8 \ \rm MHz$  is thus available for the uplink.
  
Das System GSM $1800$ ist in ähnlicher Weise aufgebaut, jedoch mit folgenden Unterschieden:
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*This band is used by a total of  $K_{\rm F}$  subchannels  $($"Radio Frequency Channels"$)$,  which are adjacent to each other with respective frequency spacing  $200 \ \rm kHz$.  The numbering is done with the variable  $k_{\rm F}$.
*Der Frequenzbereich des Uplinks liegt zwischen $1710 \ \rm MHz$ und $1785 \ \rm MHz$.
 
*Der Duplexabstand beträgt $95 \ \rm MHz$.
 
  
 +
*The frequency range for the downlink  $($the connection from the base station to the mobile station$)$  is located around the duplex spacing  $45 \ \rm MHz$  above the uplink and is otherwise structured in the same way as the latter.
  
''Hinweis:''
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*Each of these FDMA subchannels is used simultaneously by  $K_{\rm T} = 8$  subscribers in time division multiple access  $($TDMA$)$.
  
Diese Aufgabe bezieht sich auf [[Beispiele_von_Nachrichtensystemen/Funkschnittstelle|Funkschnittstelle]].
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===Fragebogen===
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The GSM $1800$ system is structured in a similar way,  but with following differences:
 +
*The frequency range of the uplink is between  $1710 \ \rm MHz$  and  $1785 \ \rm MHz$.
 +
 
 +
*The duplex spacing is  $95 \ \rm MHz$.
 +
 
 +
 
 +
 
 +
<u>Hints:</u>
 +
 
 +
*This exercise belongs to the chapter&nbsp; [[Examples_of_Communication_Systems/Radio_Interface|"Radio Interface"]].
 +
 
 +
*Reference is made in particular to the section&nbsp; [[Examples_of_Communication_Systems/Radio_Interface#Realization_of_FDMA_and_TDMA|"Realization of FDMA and TDMA"]].
 +
 +
 
 +
 
 +
 
 +
===Questions===
  
 
<quiz display=simple>
 
<quiz display=simple>
  
{Wieviele Teilkanäle entstehen beim GSM $900$ durch Frequenzmultiplex?
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{How many subchannels are created in the&nbsp; $\rm GSM \ 900$&nbsp; system by frequency division multiplexing?
 
|type="{}"}
 
|type="{}"}
 
$K_{\rm F} \ = \ $ { 124 3% }
 
$K_{\rm F} \ = \ $ { 124 3% }
  
{Wieviele Frequenzkanäle gibt es beim GSM $1800$?
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{How many frequency channels are there in the&nbsp; $\rm GSM \ 1800$&nbsp; system?
 
|type="{}"}
 
|type="{}"}
 
$K_{\rm F} \ = \ $ { 374 3% }
 
$K_{\rm F} \ = \ $ { 374 3% }
  
{Welche Mittenfrequenz benutzt der Frequenzkanal mit der Nummer $k_{\rm F} = 200$ im Downlink des GSM $1800$?
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{What center frequency&nbsp; $f_{\rm M}$&nbsp; is used by the frequency channel numbered&nbsp; $k_{\rm F} = 200$&nbsp; in the downlink of&nbsp; $\rm GSM \ 1800$?
 
|type="{}"}
 
|type="{}"}
 
$f_{\rm M}  \ = \ $ { 1845 3% } $ \ \rm MHz$
 
$f_{\rm M}  \ = \ $ { 1845 3% } $ \ \rm MHz$
  
{Wieviele Teilnehmer K können beim GSM $1800$ gleichzeitig aktiv sein?
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{How many subscribers&nbsp; $(K)$&nbsp; can be active at the&nbsp; $\rm GSM \ 1800$&nbsp; at the same time?
 
|type="{}"}
 
|type="{}"}
 
$K \ = \ $ { 2992 3% }
 
$K \ = \ $ { 2992 3% }
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</quiz>
 
</quiz>
  
===Musterlösung===
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===Solution===
 
{{ML-Kopf}}
 
{{ML-Kopf}}
'''(1)'''&nbsp; Aus der Gesamtbandbreite von $25 \ {\rm MHz} (800 ... 915 \ \rm MHz)$, den beiden Schutzbereichen von je $100 \ \rm kHz$ an den Rändern und dem Kanalabstand $200 \ \rm kHz$ ergibt sich:
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'''(1)'''&nbsp; From the total bandwidth of&nbsp; $25 \ {\rm MHz}\ (800 \text{...} 915 \ \rm MHz)$,&nbsp;
:$$K_{\rm F} ({\rm GSM \hspace{0.15cm}900}) = \frac{ 914.9 \,{\rm MHz}- 890.1 \,{\rm MHz}}{0.2 \,{\rm MHz}} \hspace{0.15cm} \underline {= 124}\hspace{0.05cm}.$$
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*the two guard bands of&nbsp; $100 \ \rm kHz$&nbsp; each at the edges,&nbsp; and
 +
 +
*the channel spacing&nbsp; $200 \ \rm kHz$,&nbsp; we get for&nbsp; $\rm GSM \ 900$:
 +
:$$K_{\rm F} = \frac{ 914.9 \,{\rm MHz}- 890.1 \,{\rm MHz}}{0.2 \,{\rm MHz}} \hspace{0.15cm} \underline {= 124}\hspace{0.05cm}.$$
 +
 
 +
 
 +
 
 +
'''(2)'''&nbsp; At&nbsp; $\rm GSM \ 1800$,&nbsp; a bandwidth of $75 \ \rm MHz$&nbsp; is now available in each direction.
 +
*Taking into account the two guard bands and the same channel spacing&nbsp; $200 \ \rm kHz$,&nbsp; we obtain here:
 +
:$$K_{\rm F} = \frac{ 75 \,{\rm MHz}- 0.2 \,{\rm MHz}}{0.2 \,{\rm MHz}} \hspace{0.15cm} \underline {= 374}\hspace{0.05cm}.$$
 +
 
  
'''(2)'''&nbsp; Beim GSM $1800$ steht nun in jeder Richtung eine Bandbreite von $75 \ \rm MHz$ zur Verfügung. Unter Berücksichtigung der beiden Schutzbänder und des gleichen Kanalabstandes $200 \ \rm kHz$ erhält man hier:
 
:$$K_{\rm F} ({\rm GSM \hspace{0.15cm}1800}) = \frac{ 75 \,{\rm MHz}- 0.2 \,{\rm MHz}}{0.2 \,{\rm MHz}} \hspace{0.15cm} \underline {= 374}\hspace{0.05cm}.$$
 
  
'''(3)'''&nbsp; Beim GSM $1800$ beginnt der Uplink bei $1710 \ \rm MHz$ und der Downlink bei
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'''(3)'''&nbsp; For&nbsp; $\rm GSM \ 1800$,&nbsp; the uplink starts at&nbsp; $1710 \ \rm MHz$&nbsp; and the downlink starts at
:$$1710 \,{\rm MHz}\,\,({\rm Uplink})+ 95 \,{\rm MHz}\,\,({\rm Duplexabstand}) ={1805 \,{\rm MHz}} \hspace{0.05cm}.$$
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:$$1710 \,{\rm MHz}\,\,({\rm uplink})+ 95 \,{\rm MHz}\,\,({\rm duplex\:spacing}) ={1805 \,{\rm MHz}} \hspace{0.05cm}.$$
Der erste Downlink–Kanal ($k_{\rm F} = 1$) liegt um die Mittenfrequenz $f_{\rm M} = 1805.2 \ \rm MHz$, der Kanal mit der Nummer $k_{\rm F} = 200$ um den Frequenzabstand $199 \cdot 0.2 \ \rm MHz$ höher:
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*The first downlink channel&nbsp; $(k_{\rm F} = 1)$&nbsp; is higher by the center frequency&nbsp; $f_{\rm M} = 1805.2 \ \rm MHz$,
 +
 +
*the channel numbered&nbsp; $k_{\rm F} = 200$&nbsp; is higher by the frequency&nbsp; $199 \cdot 0.2 \rm MHz$:
 
:$$f_{\rm M} (k_{\rm F} = 200) \hspace{0.15cm} \underline { = {1845 \,{\rm MHz}}} \hspace{0.05cm}.$$
 
:$$f_{\rm M} (k_{\rm F} = 200) \hspace{0.15cm} \underline { = {1845 \,{\rm MHz}}} \hspace{0.05cm}.$$
  
'''(4)'''&nbsp; Mit dem Ergebnis aus (2) und $K_{\rm T} = 8$ erhält man:
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 +
 
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'''(4)'''&nbsp; Using the result of subtask&nbsp; '''(2)'''&nbsp; and&nbsp; $K_{\rm T} = 8$,&nbsp; we obtain:
 
:$$K ({\rm GSM \hspace{0.15cm}1800}) = 374 \cdot 8 \hspace{0.15cm} \underline { = 2992}\hspace{0.05cm}.$$
 
:$$K ({\rm GSM \hspace{0.15cm}1800}) = 374 \cdot 8 \hspace{0.15cm} \underline { = 2992}\hspace{0.05cm}.$$
  
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[[Category:Aufgaben zu Beispiele von Nachrichtensystemen|^3.2 Funkschnittstelle^]]
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[[Category:Examples of Communication Systems: Exercises|^3.2 Radio Interface^]]

Latest revision as of 14:27, 11 January 2023

$\rm GSM \ 900$  and  $\rm GSM \ 1800$

The mobile communications standard  $\rm GSM$  ("Global System for Mobile Communications")  established in Europe since 1992 uses frequency and time division multiplexing to enable multiple users to communicate in one cell.

The following are important characteristics of the system  $\rm GSM \ 900$  shown in the diagram in somewhat simplified form.

  • The frequency band of the uplink  $($the connection from the mobile station to the base station$)$ is between  $890\ \rm MHz$  and  $915 \ \rm MHz$.
  • Taking into account the guard bands at both ends,  a total bandwidth of  $24.8 \ \rm MHz$  is thus available for the uplink.
  • This band is used by a total of  $K_{\rm F}$  subchannels  $($"Radio Frequency Channels"$)$,  which are adjacent to each other with respective frequency spacing  $200 \ \rm kHz$.  The numbering is done with the variable  $k_{\rm F}$.
  • The frequency range for the downlink  $($the connection from the base station to the mobile station$)$  is located around the duplex spacing  $45 \ \rm MHz$  above the uplink and is otherwise structured in the same way as the latter.
  • Each of these FDMA subchannels is used simultaneously by  $K_{\rm T} = 8$  subscribers in time division multiple access  $($TDMA$)$.


The GSM $1800$ system is structured in a similar way,  but with following differences:

  • The frequency range of the uplink is between  $1710 \ \rm MHz$  and  $1785 \ \rm MHz$.
  • The duplex spacing is  $95 \ \rm MHz$.


Hints:



Questions

1

How many subchannels are created in the  $\rm GSM \ 900$  system by frequency division multiplexing?

$K_{\rm F} \ = \ $

2

How many frequency channels are there in the  $\rm GSM \ 1800$  system?

$K_{\rm F} \ = \ $

3

What center frequency  $f_{\rm M}$  is used by the frequency channel numbered  $k_{\rm F} = 200$  in the downlink of  $\rm GSM \ 1800$?

$f_{\rm M} \ = \ $

$ \ \rm MHz$

4

How many subscribers  $(K)$  can be active at the  $\rm GSM \ 1800$  at the same time?

$K \ = \ $


Solution

(1)  From the total bandwidth of  $25 \ {\rm MHz}\ (800 \text{...} 915 \ \rm MHz)$, 

  • the two guard bands of  $100 \ \rm kHz$  each at the edges,  and
  • the channel spacing  $200 \ \rm kHz$,  we get for  $\rm GSM \ 900$:
$$K_{\rm F} = \frac{ 914.9 \,{\rm MHz}- 890.1 \,{\rm MHz}}{0.2 \,{\rm MHz}} \hspace{0.15cm} \underline {= 124}\hspace{0.05cm}.$$


(2)  At  $\rm GSM \ 1800$,  a bandwidth of $75 \ \rm MHz$  is now available in each direction.

  • Taking into account the two guard bands and the same channel spacing  $200 \ \rm kHz$,  we obtain here:
$$K_{\rm F} = \frac{ 75 \,{\rm MHz}- 0.2 \,{\rm MHz}}{0.2 \,{\rm MHz}} \hspace{0.15cm} \underline {= 374}\hspace{0.05cm}.$$


(3)  For  $\rm GSM \ 1800$,  the uplink starts at  $1710 \ \rm MHz$  and the downlink starts at

$$1710 \,{\rm MHz}\,\,({\rm uplink})+ 95 \,{\rm MHz}\,\,({\rm duplex\:spacing}) ={1805 \,{\rm MHz}} \hspace{0.05cm}.$$
  • The first downlink channel  $(k_{\rm F} = 1)$  is higher by the center frequency  $f_{\rm M} = 1805.2 \ \rm MHz$,
  • the channel numbered  $k_{\rm F} = 200$  is higher by the frequency  $199 \cdot 0.2 \rm MHz$:
$$f_{\rm M} (k_{\rm F} = 200) \hspace{0.15cm} \underline { = {1845 \,{\rm MHz}}} \hspace{0.05cm}.$$


(4)  Using the result of subtask  (2)  and  $K_{\rm T} = 8$,  we obtain:

$$K ({\rm GSM \hspace{0.15cm}1800}) = 374 \cdot 8 \hspace{0.15cm} \underline { = 2992}\hspace{0.05cm}.$$