Title :
Multiband-OFDM MIMO coding framework for UWB communication systems
Author :
Siriwongpairat, W. Pam ; Su, Weifeng ; Olfat, Masoud ; Liu, K. J Ray
Author_Institution :
Dept. of Electr., Univ. of Maryland, College Park, MD, USA
Abstract :
The emerging ultrawideband (UWB) system offers a great potential for the design of high speed short-range wireless communications. In order to satisfy the growing demand for higher data rates, one possible solution is to exploit both spatial and multipath diversities via the use of multiple-input multiple-output (MIMO) and proper coding techniques. In this paper, we propose a general framework to analyze the performance of multiband UWB-MIMO systems regardless of specific coding schemes. A combination of space-time-frequency (STF) coding and hopping multiband OFDM modulation is also proposed to fully exploit all of the available spatial and frequency diversities, richly inherent in UWB environments. We quantify the performance merits of the proposed scheme in case of Nakagami-m frequency-selective fading channels. Different from the conventional STF coded MIMO-OFDM system, the performance of the STF coded hopping multiband UWB does not depend on the temporal correlation of the propagation channel. We show that the maximum achievable diversity of multiband UWB-MIMO system is the product of the number of transmit and receive antennas, the number of multipath components, and the number of jointly encoded OFDM symbols. Interestingly, the diversity gain does not severely depend on the fading parameter m, and the diversity advantage obtained under Nakagami fading with arbitrary m parameter is almost the same as that obtained in Rayleigh fading channels. Finally, simulation results are presented to support the theoretical analysis.
Keywords :
MIMO systems; Nakagami channels; OFDM modulation; Rayleigh channels; channel coding; diversity reception; multipath channels; space-time codes; ultra wideband communication; Nakagami-m frequency-selective fading channels; Rayleigh fading channel; UWB communication systems; hopping multiband OFDM modulation; multiband-OFDM MIMO coding framework; multipath diversity; multiple-input multiple-output; orthogonal frequency-division multiplexing; receive antennas; short-range wireless communications; space-time-frequency coding; spatial diversity; transmit antennas; ultrawideband system; Frequency diversity; Frequency-selective fading channels; MIMO; OFDM modulation; Performance analysis; Rayleigh channels; Receiving antennas; Ultra wideband communication; Ultra wideband technology; Wireless communication; Frequency selective fading channels; multiband orthogonal frequency-division multiplexing (OFDM); multiple antennas; space-time-frequency coding; ultrawideband (UWB); wireless personal area networks (WPANs);
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2005.861092