Title :
Unipolar space-time codes with reduced decoding complexity for TH-UWB with PPM
Author :
Abou-Rjeily, Chadi ; Bkassiny, Mario
Author_Institution :
Dept. of Electr. & Comput. Eng., Lebanese American Univ. (LAU), Byblos, Lebanon
fDate :
10/1/2009 12:00:00 AM
Abstract :
In this paper, we consider the problem of space-time (ST) coding with unipolar pulse position modulations (PPM) and propose a novel ST code that satisfies a large number of construction constraints rendering it superior to the existing PPM encoding schemes. In particular, the proposed 2 times 2 code achieves a full transmit diversity order while transmitting at a rate of 1 PPM-symbol per channel use. The proposed scheme can be associated with M-ary PPM constellations for all even values of M without introducing any constellation expansion. This renders the proposed scheme suitable for low cost carrier-less ultra-wideband (UWB) systems where information must be conveyed only by the time delays of the modulated sub-nanosecond pulses without introducing any amplitude amplifications or phase rotations. Finally, the proposed scheme can be associated with a reduced complexity optimal maximum-likelihood (ML) decoder that takes the structure of the proposed code into consideration in order to simplify the decoding procedure. We also propose a simple diversity-preserving suboptimal decoder that requires approximately half the number of multiplications compared to the ML decoder. Possible extensions to transmitters equipped with three antennas are also discussed in situations where a certain number of feedback bits is available.
Keywords :
computational complexity; diversity reception; maximum likelihood decoding; pulse position modulation; space-time codes; ultra wideband communication; M-ary PPM constellation; TH-UWB systems; amplitude amplifications; channel use; decoding complexity reduction; diversity-preserving suboptimal decoder; full transmit diversity order; maximum likelihood decoder; phase rotations; pulse position modulations; subnanosecond pulses; time-hopping ultrawideband systems; unipolar space-time codes; Amplitude modulation; Costs; Delay effects; Maximum likelihood decoding; Modular construction; Modulation coding; Phase modulation; Pulse modulation; Space time codes; Ultra wideband technology; Time-hopping ultra-wideband (TH-UWB), space-time (ST), Pulse position modulation (PPM);
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2009.080684