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Published in: Wireless Personal Communications 4/2014

01-08-2014

Adaptively Grouped Multilevel Space–Time Trellis Codes Combined with Beamforming and Component Code Selection

Authors: Dharmvir Jain, Sanjay Sharma

Published in: Wireless Personal Communications | Issue 4/2014

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Abstract

The performance of adaptively grouped multilevel space–time trellis codes (AGMLSTTCs) is limited due to predefined component space–time trellis codes (STTCs) used in multilevel coding and lack of beamforming. In this paper, we present improvement in performance of AGMLSTTCs by combining beamforming and dynamic selection of component STTCs with AGMLSTTCs to design new codes henceforth referred to as weighted adaptively grouped multilevel dynamic space–time trellis codes. The channel state information at transmitter (CSI) is used to select a code set having different sets of generator sequences. The selected code set is used for generating dynamic STTCs (DSTTCs). The DSTTCs are used as component codes in multilevel coding. We use a single full-diversity DSTTC at some initial levels and multiple DSTTCs at some later levels. The single full diversity DSTTC at each initial level spans all transmit antennas and the DSTTC at each later level spans a group of transmit antennas. The CSI is further used to provide a beam forming scheme by properly weighting transmitted signals. Weights are selected that based on CSI at transmitter. The simulation results show that AGMLSTTCs combined with beamforming and DSTTCs provide significant improved error performance over grouped multilevel space–time trellis codes and AGMLSTTCs.

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Literature
1.
go back to reference Tarokh, V., Seshadri, N., & Calderbank, A. R. (1998). Space–time codes for high data rate wireless communication: Performance criterion and code construction. IEEE Transactions on Information Theory, 44(2), 744–765.CrossRefMATHMathSciNet Tarokh, V., Seshadri, N., & Calderbank, A. R. (1998). Space–time codes for high data rate wireless communication: Performance criterion and code construction. IEEE Transactions on Information Theory, 44(2), 744–765.CrossRefMATHMathSciNet
2.
go back to reference Baro, S., Bauch, G., & Hansmanna, A. (2000). Improved codes for space–time trellis-coded modulation. IEEE Communications Letters, 4, 20–22.CrossRef Baro, S., Bauch, G., & Hansmanna, A. (2000). Improved codes for space–time trellis-coded modulation. IEEE Communications Letters, 4, 20–22.CrossRef
3.
go back to reference Chen, Z., Vucetic, B., & Yuan, J. (2001). Improved space–time trellis coded modulation scheme on slow Rayleigh fading channels. Electronics Letters, 37, 440–441.CrossRef Chen, Z., Vucetic, B., & Yuan, J. (2001). Improved space–time trellis coded modulation scheme on slow Rayleigh fading channels. Electronics Letters, 37, 440–441.CrossRef
4.
go back to reference Mavares, D., & Torres, R. P. (2006). Space–time code selection for transmit antenna diversity systems. In Proceedings of the first mobile computing and wireless communication international conference (pp. 83–87). Mavares, D., & Torres, R. P. (2006). Space–time code selection for transmit antenna diversity systems. In Proceedings of the first mobile computing and wireless communication international conference (pp. 83–87).
5.
go back to reference Liu, L., & Jafarkhani, H. (2006). Space–time trellis codes based on channel-phase feedback. IEEE Transactions on Communications, 54, 2186–2198.CrossRef Liu, L., & Jafarkhani, H. (2006). Space–time trellis codes based on channel-phase feedback. IEEE Transactions on Communications, 54, 2186–2198.CrossRef
6.
go back to reference Celebi, M. E., Sahin, S., & Aygolu, U. (2007). Full rate full diversity space–time block code selection for more than two transmit antennas. IEEE Transactions on Wireless Communications, 6, 16–19.CrossRef Celebi, M. E., Sahin, S., & Aygolu, U. (2007). Full rate full diversity space–time block code selection for more than two transmit antennas. IEEE Transactions on Wireless Communications, 6, 16–19.CrossRef
7.
go back to reference Eksim, A., & Celebi, M. E. (2010). Received SNR based code and antenna selection for limited feedback communication. In Proceedings of 18th conference of IEEE signal processing and communications applications (pp. 21–24). Eksim, A., & Celebi, M. E. (2010). Received SNR based code and antenna selection for limited feedback communication. In Proceedings of 18th conference of IEEE signal processing and communications applications (pp. 21–24).
8.
go back to reference Molisch, A. F., & Win, M. Z. (2004). MIMO systems with antenna selection. IEEE Microwave Magazine, 5(1), 46–56.CrossRef Molisch, A. F., & Win, M. Z. (2004). MIMO systems with antenna selection. IEEE Microwave Magazine, 5(1), 46–56.CrossRef
9.
go back to reference Gore, D. A., & Paulraj, A. J. (2002). MIMO antenna subset selection with space-time coding. IEEE Transactions on Signal Processing, 50(10), 2580–2588.CrossRef Gore, D. A., & Paulraj, A. J. (2002). MIMO antenna subset selection with space-time coding. IEEE Transactions on Signal Processing, 50(10), 2580–2588.CrossRef
10.
go back to reference Wong, W. H., & Larsson, E. G. (2003). Orthogonal space–time block coding with antenna selection and power allocation. Electronics Letters, 39(4), 379–381.CrossRef Wong, W. H., & Larsson, E. G. (2003). Orthogonal space–time block coding with antenna selection and power allocation. Electronics Letters, 39(4), 379–381.CrossRef
11.
go back to reference Tao, M., Li, Q., & Garg, H. K. (2007). Extended space–time block coding with transmit antenna selection over correlated fading channels. IEEE Transactions on Wireless Communications, 6(9), 3137–3141.CrossRef Tao, M., Li, Q., & Garg, H. K. (2007). Extended space–time block coding with transmit antenna selection over correlated fading channels. IEEE Transactions on Wireless Communications, 6(9), 3137–3141.CrossRef
12.
go back to reference Chen, Z., Vucetic, B., & Yuan, J. (2003). Space–time trellis codes with transmit antenna selection. Electronics Letters, 39(11), 854–855.CrossRef Chen, Z., Vucetic, B., & Yuan, J. (2003). Space–time trellis codes with transmit antenna selection. Electronics Letters, 39(11), 854–855.CrossRef
13.
go back to reference Tarokh, V., Naguib, A., Seshadri, N., & Calderbank, A. R. (1999). Combined array processing and space–time coding. IEEE Transactions on Information Theory, 45(4), 1121–1128.CrossRefMATHMathSciNet Tarokh, V., Naguib, A., Seshadri, N., & Calderbank, A. R. (1999). Combined array processing and space–time coding. IEEE Transactions on Information Theory, 45(4), 1121–1128.CrossRefMATHMathSciNet
14.
go back to reference Narasimhan, R. (2003). Spatial multiplexing with transmit antenna and constellation selection for correlated MIMO fading channels. IEEE Transactions on Signal Processing, 51(11), 2829–2838.CrossRef Narasimhan, R. (2003). Spatial multiplexing with transmit antenna and constellation selection for correlated MIMO fading channels. IEEE Transactions on Signal Processing, 51(11), 2829–2838.CrossRef
15.
go back to reference Yuan, J. (2006). Adaptive transmit antenna selection with pragmatic space–time trellis codes. IEEE Transactions on Wireless Communications, 5(7), 1706–1715.CrossRef Yuan, J. (2006). Adaptive transmit antenna selection with pragmatic space–time trellis codes. IEEE Transactions on Wireless Communications, 5(7), 1706–1715.CrossRef
16.
go back to reference Huang, Y., Xu, D., & Yang, L. (2006). Adaptive antenna grouping for space–time block coding and spatial multiplexing hybrid system. In Proceedings of the first mobile computing and wireless communication international conference (MCWC 2006) (pp. 88–92). Huang, Y., Xu, D., & Yang, L. (2006). Adaptive antenna grouping for space–time block coding and spatial multiplexing hybrid system. In Proceedings of the first mobile computing and wireless communication international conference (MCWC 2006) (pp. 88–92).
17.
go back to reference Jongren, G., Skoglund, M., & Ottersten, B. (2002). Combining beam forming and orthogonal space–time block coding. IEEE Transactions on Information Theory, 48, 611–627.CrossRef Jongren, G., Skoglund, M., & Ottersten, B. (2002). Combining beam forming and orthogonal space–time block coding. IEEE Transactions on Information Theory, 48, 611–627.CrossRef
18.
go back to reference Zhou, S., & Giannakis, G. (2002). Optimal transmitter eigen-beamforming and space–time block coding based on channel mean feedback. IEEE Transactions on Signal Processing, 50, 2599–2613.CrossRef Zhou, S., & Giannakis, G. (2002). Optimal transmitter eigen-beamforming and space–time block coding based on channel mean feedback. IEEE Transactions on Signal Processing, 50, 2599–2613.CrossRef
19.
go back to reference Liu, J., & Gunawan, E. (2003). Combining ideal beam forming and Alamouti space–time block codes. Electronics Letters, 39, 1258–1259.CrossRef Liu, J., & Gunawan, E. (2003). Combining ideal beam forming and Alamouti space–time block codes. Electronics Letters, 39, 1258–1259.CrossRef
21.
go back to reference Santoso, A., Li, Y., & Vucetic, B. (2004). Weighted space–time trellis codes. Electronics Letters, 40, 254–256.CrossRef Santoso, A., Li, Y., & Vucetic, B. (2004). Weighted space–time trellis codes. Electronics Letters, 40, 254–256.CrossRef
22.
go back to reference Imai, H., & Hirakawa, S. (1977). A new multilevel coding method using error correcting codes. IEEE Transactions on Information Theory, 23(3), 371–377.CrossRefMATH Imai, H., & Hirakawa, S. (1977). A new multilevel coding method using error correcting codes. IEEE Transactions on Information Theory, 23(3), 371–377.CrossRefMATH
23.
24.
go back to reference Waschmann, U., Fischer, R. F., & Huber, J. B. (1999). Multilevel codes: Theoretical concepts and practical design rules. IEEE Transactions on Information Theory, 45(5), 1361–1391.CrossRef Waschmann, U., Fischer, R. F., & Huber, J. B. (1999). Multilevel codes: Theoretical concepts and practical design rules. IEEE Transactions on Information Theory, 45(5), 1361–1391.CrossRef
25.
go back to reference Ma, Shang-Chih, & Lin, Chia-Hao. (2010). Multilevel concatenated space–time block codes. IEICE Transactions on Fundamentals of Electronics, Communications and Computer, E93–A(10), 1845–1847. Ma, Shang-Chih, & Lin, Chia-Hao. (2010). Multilevel concatenated space–time block codes. IEICE Transactions on Fundamentals of Electronics, Communications and Computer, E93–A(10), 1845–1847.
27.
go back to reference Sharma, S. (2012). A novel weighted multilevel space–time trellis coding scheme. Computers and Mathematics with Applications, 63(1), 280–287.CrossRefMATHMathSciNet Sharma, S. (2012). A novel weighted multilevel space–time trellis coding scheme. Computers and Mathematics with Applications, 63(1), 280–287.CrossRefMATHMathSciNet
28.
go back to reference Baghaie, A. M., Martin, P. A., & Taylor, D. P. (2010). Grouped multilevel space–time trellis codes. IEEE Communications Letters, 14(3), 232–234.CrossRef Baghaie, A. M., Martin, P. A., & Taylor, D. P. (2010). Grouped multilevel space–time trellis codes. IEEE Communications Letters, 14(3), 232–234.CrossRef
30.
go back to reference Blanz, J. (2006). Dynamic space–time coding for a communication system. US Patent Publication No. 20060209749, September 21. Blanz, J. (2006). Dynamic space–time coding for a communication system. US Patent Publication No. 20060209749, September 21.
31.
Metadata
Title
Adaptively Grouped Multilevel Space–Time Trellis Codes Combined with Beamforming and Component Code Selection
Authors
Dharmvir Jain
Sanjay Sharma
Publication date
01-08-2014
Publisher
Springer US
Published in
Wireless Personal Communications / Issue 4/2014
Print ISSN: 0929-6212
Electronic ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-014-1654-x

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