Difference between revisions of "Aufgaben:Exercise 4.2: UMTS Radio Channel Basics"

From LNTwww
Line 4: Line 4:
 
}}
 
}}
  
[[File:P_ID1931__Bei_A_4_2.png|right|frame|Path loss,  frequency–selective and time–selective fading '''Korrektur''']]
+
[[File:EN_Bei_A_4_2.png|right|frame|Path loss,  frequency–selective and time–selective fading '''Korrektur''']]
 
UMTS also has quite a few effects leading to degradation that must be taken into account during system planning:
 
UMTS also has quite a few effects leading to degradation that must be taken into account during system planning:
 
*${\rm Interference}$:  Since all users are simultaneously served in the same frequency band,  each user is interfered by other users.
 
*${\rm Interference}$:  Since all users are simultaneously served in the same frequency band,  each user is interfered by other users.

Revision as of 16:42, 6 February 2023

Path loss,  frequency–selective and time–selective fading Korrektur

UMTS also has quite a few effects leading to degradation that must be taken into account during system planning:

  • ${\rm Interference}$:  Since all users are simultaneously served in the same frequency band,  each user is interfered by other users.
  • ${\rm Path\:loss}$:  The received power  $P_{\rm E}$  of a radio signal decreases with distance   $d$   by a factor  $d^{- \gamma}$.
  • ${\rm Multipath\:propagation}$:  The signal reaches the mobile receiver not only through the direct path,  but through several paths – differently attenuated and differently delayed.
  • ${\rm Doppler\:effect}$:  If transmitter and/or receiver move,  frequency shifts can occur depending on speed and the direction  $($Which angle?  Towards each other? Away from each other?$)$.


In the book  "Mobile Communications"  these effects have already been discussed in detail. The diagrams convey only a few pieces of information regarding

  • Path loss:  Path loss indicates the decrease in the received power with distance  $d$  from the transmitter.  Above the so-called  "break point"  applies approximately to the received power:
$$\frac{P(d)}{P(d_0)} = \alpha_0 \cdot \left ( {d}/{d_0}\right )^{-4}.$$
According to the upper graph  $\alpha_{0} = 10^{-5}$  $($correspondingly  $50 \ \rm dB)$  and  $d_{0} = 100 \ \rm m$.
  • Frequency-selective fading:  The power transfer function  $|H_{\rm K}(f)|^{2}$  at a given time according to the middle graph illustrates frequency-selective fading.  The blue-dashed horizontal line,  on the other hand,  indicates non-frequency-selective fading.
Such frequency-selective fading occurs when the coherence bandwidth  $B_{\rm K}$  is much smaller than the signal bandwidth  $B_{\rm S}$.  Here,  with the  "delay spread"  $T_{\rm V}$   ⇒   difference between the maximum and minimum delay times:
$$B_{\rm K}\approx \frac{1}{T_{\rm V}}= \frac{1}{\tau_{\rm max}- \tau_{\rm min}}.$$
  • Time-selective fading:  The bottom graph shows the power transfer function  $|H_{\rm K}(t)|^{2}$  for a fixed frequency  $f_{0}$.  The sketch is to be understood schematically,  because for the time-selective fading considered here exactly the same course was chosen as in the middle diagram for the frequency-selective fading  $($pure convenience of the author$)$.
Here a so-called  "Doppler spread"  $B_{\rm D}$  arises,  defined as the difference between the maximum and the minimum Doppler frequency.  The inverse  $T_{\rm D} = 1/B_{\rm D}$  is called  "coherence time"  or also  "correlation duration".  In UMTS,  time-selective fading occurs whenever  $T_{\rm D} \ll T_{\rm C}$  $($chip duration$)$.


Hints:

  • For UMTS,  the bandwidth:  $B_{\rm S} = 5 \ \rm MHz$  and the chip duration:  $T_{\rm C} \approx 0.26 \ \rm µ s$.



Questions

1

Starting from the top graph on the information page,  calculate the path loss  $($in  $\rm dB)$  for  $d = \rm 5 \ km$.

${\rm path\ loss} \ = \ $

$\ \rm dB $.

2

What statements are true regarding frequency-selective fading?

This is caused by multipath reception.
It is caused by movement of transmitter and/or receiver.
Different frequencies are attenuated differently.
An echo at a distance  $1\ \rm µ s$  results in frequency-selective fading.

3

What statements are true regarding time-selective fading?

This arises due to multipath reception.
It results from movement of transmitter and/or receiver.
Different frequencies are attenuated differently.


Solution

(1)  According to the sketch,  the breakpoint is at  $d_{0} = 100 \ \rm m$.

  • For  $d ≤ d_{0}$,  the path loss is equal to  $\alpha_{0} \cdot (d/d_{0})^{-2}$.  For $d = d_{0} = 100 \ \rm m$  holds:
$${\rm path\ loss} = \alpha_0 = 10^{-5}\hspace{0.5cm}\Rightarrow\hspace{0.5cm}{50\,{\rm dB}}.$$
  • Above  $d_{0}$,  the path loss is equal to  $\alpha_{0} \cdot (d/d_{0})^{-4}$.   Thus,  at  $5 \ \rm km$  distance,  one obtains:
$${\rm path\ loss} = 10^{-5}\cdot 50^{-4} = 1.6 \cdot 10^{-12}\hspace{0.5cm}\Rightarrow\hspace{0.5cm}\underline{118\,{\rm dB}}.$$


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

  • Frequency-selective fading is due to multipath reception.  This means:
  • Different frequency components are delayed and attenuated differently by the channel.
  • This results in attenuation and phase distortion.
  • Because  $\tau_{\rm max} = 1 \ \rm µ s$  $($simplifying  $\tau_{\rm min} = 0$  is set$)$  further results in
$$B_{\rm K} = \frac{1}{\tau_{\rm max}- \tau_{\rm min}} = 1\,{\rm MHz}\ \ll \ B_{\rm S} \hspace{0.15cm}\underline {= 5\,{\rm MHz}}.$$


(3)  Correct is  statement 2.

  • Statements 1 and 3,  on the other hand,  are valid for frequency-selective fading – see subtask  (2).