Title :
Simulation of bit error performance of FSK, BPSK, and π/4 DQPSK in flat fading indoor radio channels using a measurement-based channel model
Author :
Rappaport, Theodore S. ; Fung, Victor
Author_Institution :
Bradley Dept. of Electr. Eng., Virginia Polytech. Inst. & State Univ., Blacksburg, VA, USA
fDate :
11/1/1991 12:00:00 AM
Abstract :
The results of a simulation study that provides insight into the simulation methodology and bit error rate (BER) performance of frequency-shift keying (FSK), binary phase-shift keying (BPSK), and π/4 differential phase-shift keying (π/4 DQPSK) in flat fading channels inside open plan buildings are presented. A detailed measurement-based propagation channel model, SIRCIM (simulation of indoor radio channel impulse response models), which generates over 1000 closely spaced baseband equivalent complex impulse responses for a mobile radio operating at 1.3 GHz and traveling over a 1-m path, is used. The small-scale channel model, the communication system models used in the analysis and the methods used to predict BER are described. The channel simulator and the systems models have been thoroughly tested, and results from average instantaneous BER simulations are shown. The BER performances of the modulation techniques are presented. It is found that BPSK offers between a 2.8-dB and 3.0-dB improvement over π/4 DQPSK, although the latter offers a 3-dB increase in capacity for a given spectrum allocation
Keywords :
digital radio systems; error statistics; fading; frequency shift keying; mobile radio systems; phase shift keying; telecommunication channels; π/4 DQPSK; π/4 differential phase-shift keying; 1.3 GHz; BER; BPSK; FSK; SIRCIM; UHF; binary phase-shift keying; bit error rate; flat fading channels; frequency-shift keying; impulse response; indoor radio channels; measurement-based channel model; mobile radio; modulation techniques; open plan buildings; propagation channel model; simulation study; Baseband; Binary phase shift keying; Bit error rate; Differential phase shift keying; Fading; Frequency shift keying; Indoor radio communication; Land mobile radio; Phase shift keying; Predictive models;
Journal_Title :
Vehicular Technology, IEEE Transactions on