Figure 8: DVB-T spectrum without suppressed carrier,
C21 (470 – 478) MHz, 8k mode, CS = 50% (CS error
visible at central carrier, 474 MHz).
a) AI = 0%, PE = 0
o
b) AI = 0%, PE = 5
o
c) AI = 10%, PE = 0
o
d) AI = 10%, PE = 5
o
e) AI = 20%, PE = 0
o
f) AI = 20%, PE = 5
o
Figure 9: Simulated spectrum of the DVB-T with 64-
QAM, 8k mode and in case of AI and PE presence (lower
band carriers 0 - 3407 were set to zero to illustrate the
crosstalk).
The effect can be described by means of simple
trigonometric operations which can be derived from
the vector diagram of the signal and noise. In the
case of AI, the opposite vectors of I/Q signals with
noise are not cancelled completely and it results
in a noise vector causing crosstalk from the upper
band to lower frequency band.
A phase error will result in a noise vector with
the length determined by the vector parallelogram.
In both cases the actual useful signal amplitude
decreases by the same amount by which the
crosstalk increases.
In the practical and commercial DVB-T
modulator implementations, usually AI less than 5%
and PE less than 0.5 degree is the aim of the design
and it is verified only very close to the center carrier
(no. 3408 in case of the DVB-T and COFDM 8k
mode) and adjacent carriers.
ACKNOWLEDGEMENTS
The paper was supported by the Research program
of the Brno University of Technology
no. MSM0021630513, “Electronic Communication
Systems and New Generation Technology
(ELKOM)” and the research grant projects of the
Czech Science Foundation GACR no. 102/08/P295
“Analysis and Simulation of the Transmission
Distortions of the Digital Television DVB-T/H“
and no. P102/10/1320 “Research and Modeling
of Advanced Methods of Image Quality Evaluation
(DEIMOS)”.
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