Home > Research > Publications & Outputs > Gaussian integers and interleaved rank codes fo...

Links

Text available via DOI:

View graph of relations

Gaussian integers and interleaved rank codes for space-time block codes

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published

Standard

Gaussian integers and interleaved rank codes for space-time block codes. / Asif, Hafiz; Honary, Bahram; Hamyun, M. T.
In: International Journal of Communication Systems, Vol. 30, No. 1, e2943, 10.01.2017.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Asif, H, Honary, B & Hamyun, MT 2017, 'Gaussian integers and interleaved rank codes for space-time block codes', International Journal of Communication Systems, vol. 30, no. 1, e2943. https://doi.org/10.1002/dac.2943

APA

Asif, H., Honary, B., & Hamyun, M. T. (2017). Gaussian integers and interleaved rank codes for space-time block codes. International Journal of Communication Systems, 30(1), Article e2943. https://doi.org/10.1002/dac.2943

Vancouver

Asif H, Honary B, Hamyun MT. Gaussian integers and interleaved rank codes for space-time block codes. International Journal of Communication Systems. 2017 Jan 10;30(1):e2943. Epub 2015 Feb 11. doi: 10.1002/dac.2943

Author

Asif, Hafiz ; Honary, Bahram ; Hamyun, M. T. / Gaussian integers and interleaved rank codes for space-time block codes. In: International Journal of Communication Systems. 2017 ; Vol. 30, No. 1.

Bibtex

@article{43eb5f9bbda142bcbe45e34b16e2682a,
title = "Gaussian integers and interleaved rank codes for space-time block codes",
abstract = "This paper presents the design of space–time block codes (STBCs) over maximum rank distance (MRD) codes, energy-efficient STBCs, STBCs using interleaved-MRD codes, the use of Gaussian integers for STBCs modulation, and Gabidulin's decoding algorithm for decoding STBCs. The design fundamentals of STBCs using MRD codes are firstly put forward for different number of transmit antennas. Extension finite fields (Galois fields) are used to design these linear block codes. Afterward, a comparative study of MRD-based STBCs with corresponding orthogonal and quasi-orthogonal codes is also included in the paper. The simulation results show that rank codes, for any number of transmit antennas, exhibit diversity gain at full rate contrary to orthogonal codes, which give diversity gain at full rate only for two transmit antennas case. Secondly, an energy-efficient MRD-STBC is proposed, which outperforms orthogonal STBC at least for 2 × 1 antenna system. Thirdly, interleaved-MRD codes are used to construct higher-order transmit antenna systems. Using interleaved-MRD codes further reduces the complexity (compared with normal MRD codes) of the decoding algorithm. Fourthly, the use of Gaussian integers is utilized in mapping MRD-based STBCs to complex constellations. Furthermore, it is described how an efficient and computationally less complex Gabidulin's decoding algorithm can be exploited for decoding complex MRD-STBCs. The decoding results have been compared against hard-decision maximum likelihood decoding. Under this decoding scheme, MRD-STBCs have been shown to be potential candidate for higher transmit antenna systems as the decoding complexity of Gabidulin's algorithm is far less, and its performance for decoding MRD-STBCs is somewhat reasonable.",
author = "Hafiz Asif and Bahram Honary and Hamyun, {M. T.}",
year = "2017",
month = jan,
day = "10",
doi = "10.1002/dac.2943",
language = "English",
volume = "30",
journal = "International Journal of Communication Systems",
issn = "1074-5351",
publisher = "John Wiley and Sons Ltd",
number = "1",

}

RIS

TY - JOUR

T1 - Gaussian integers and interleaved rank codes for space-time block codes

AU - Asif, Hafiz

AU - Honary, Bahram

AU - Hamyun, M. T.

PY - 2017/1/10

Y1 - 2017/1/10

N2 - This paper presents the design of space–time block codes (STBCs) over maximum rank distance (MRD) codes, energy-efficient STBCs, STBCs using interleaved-MRD codes, the use of Gaussian integers for STBCs modulation, and Gabidulin's decoding algorithm for decoding STBCs. The design fundamentals of STBCs using MRD codes are firstly put forward for different number of transmit antennas. Extension finite fields (Galois fields) are used to design these linear block codes. Afterward, a comparative study of MRD-based STBCs with corresponding orthogonal and quasi-orthogonal codes is also included in the paper. The simulation results show that rank codes, for any number of transmit antennas, exhibit diversity gain at full rate contrary to orthogonal codes, which give diversity gain at full rate only for two transmit antennas case. Secondly, an energy-efficient MRD-STBC is proposed, which outperforms orthogonal STBC at least for 2 × 1 antenna system. Thirdly, interleaved-MRD codes are used to construct higher-order transmit antenna systems. Using interleaved-MRD codes further reduces the complexity (compared with normal MRD codes) of the decoding algorithm. Fourthly, the use of Gaussian integers is utilized in mapping MRD-based STBCs to complex constellations. Furthermore, it is described how an efficient and computationally less complex Gabidulin's decoding algorithm can be exploited for decoding complex MRD-STBCs. The decoding results have been compared against hard-decision maximum likelihood decoding. Under this decoding scheme, MRD-STBCs have been shown to be potential candidate for higher transmit antenna systems as the decoding complexity of Gabidulin's algorithm is far less, and its performance for decoding MRD-STBCs is somewhat reasonable.

AB - This paper presents the design of space–time block codes (STBCs) over maximum rank distance (MRD) codes, energy-efficient STBCs, STBCs using interleaved-MRD codes, the use of Gaussian integers for STBCs modulation, and Gabidulin's decoding algorithm for decoding STBCs. The design fundamentals of STBCs using MRD codes are firstly put forward for different number of transmit antennas. Extension finite fields (Galois fields) are used to design these linear block codes. Afterward, a comparative study of MRD-based STBCs with corresponding orthogonal and quasi-orthogonal codes is also included in the paper. The simulation results show that rank codes, for any number of transmit antennas, exhibit diversity gain at full rate contrary to orthogonal codes, which give diversity gain at full rate only for two transmit antennas case. Secondly, an energy-efficient MRD-STBC is proposed, which outperforms orthogonal STBC at least for 2 × 1 antenna system. Thirdly, interleaved-MRD codes are used to construct higher-order transmit antenna systems. Using interleaved-MRD codes further reduces the complexity (compared with normal MRD codes) of the decoding algorithm. Fourthly, the use of Gaussian integers is utilized in mapping MRD-based STBCs to complex constellations. Furthermore, it is described how an efficient and computationally less complex Gabidulin's decoding algorithm can be exploited for decoding complex MRD-STBCs. The decoding results have been compared against hard-decision maximum likelihood decoding. Under this decoding scheme, MRD-STBCs have been shown to be potential candidate for higher transmit antenna systems as the decoding complexity of Gabidulin's algorithm is far less, and its performance for decoding MRD-STBCs is somewhat reasonable.

U2 - 10.1002/dac.2943

DO - 10.1002/dac.2943

M3 - Journal article

VL - 30

JO - International Journal of Communication Systems

JF - International Journal of Communication Systems

SN - 1074-5351

IS - 1

M1 - e2943

ER -