Space-Time Codes for MIMO Systems with Non-Collocated Transmit Antennas
We consider space-time coding methods for cooperative narrowband and wideband downlink transmission from multiple base stations. The communication channels in multi base-station signaling differ from those involving collocated transmit-antenna systems, and, if properly used, can provide improved res...
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| Published in | IEEE journal on selected areas in communications Vol. 26; no. 6; pp. 927 - 937 |
|---|---|
| Main Authors | , |
| Format | Journal Article |
| Language | English |
| Published |
New York
IEEE
01.08.2008
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Subjects | |
| Online Access | Get full text |
| ISSN | 0733-8716 1558-0008 |
| DOI | 10.1109/JSAC.2008.080809 |
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| Abstract | We consider space-time coding methods for cooperative narrowband and wideband downlink transmission from multiple base stations. The communication channels in multi base-station signaling differ from those involving collocated transmit-antenna systems, and, if properly used, can provide improved resistance to shadowing and extended range. One challenge, however, that arises in this context is asynchronous reception of the signal elements. In the narrowband case the proposed designs generate asynchrony robust space-time block codes (STBCs) via transformations of existing orthogonal STBCs. Subject to a maximum allowable relative delay between signals from distinct transmit antennas, the resulting received signal can be equivalently modeled as arising from synchronous STBC transmission with orthogonal or diagonal STBCs, implying that these designs provide full space diversity with low-complexity decoding in asynchronous settings. We also describe three system approaches for wideband transmission with throughput diversity receiver-complexity trade-offs. Common to all these systems are elements such as OFDM- type signaling, bit-interleaved coded modulation, and iterative decoding. The lowest data-rate lowest complexity system employs an inner orthogonal space-time block code with embedded OFDM-type transmission, while the highest data-rate highest complexity scheme does not employ an inner code. The latter group of schemes can also conveniently provide high data rates at the cost of reduced space diversity. All schemes can be readily extended to provide flexible unequal error protection for media transport. |
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| AbstractList | Subject to a maximum allowable relative delay between signals from distinct transmit antennas, the resulting received signal can be equivalently modeled as arising from synchronous STBC transmission with orthogonal or diagonal STBCs, implying that these designs provide full space diversity with low-complexity decoding in asynchronous settings. We consider space-time coding methods for cooperative narrowband and wideband downlink transmission from multiple base stations. The communication channels in multi base-station signaling differ from those involving collocated transmit-antenna systems, and, if properly used, can provide improved resistance to shadowing and extended range. One challenge, however, that arises in this context is asynchronous reception of the signal elements. In the narrowband case the proposed designs generate asynchrony robust space-time block codes (STBCs) via transformations of existing orthogonal STBCs. Subject to a maximum allowable relative delay between signals from distinct transmit antennas, the resulting received signal can be equivalently modeled as arising from synchronous STBC transmission with orthogonal or diagonal STBCs, implying that these designs provide full space diversity with low-complexity decoding in asynchronous settings. We also describe three system approaches for wideband transmission with throughput diversity receiver-complexity trade-offs. Common to all these systems are elements such as OFDM- type signaling, bit-interleaved coded modulation, and iterative decoding. The lowest data-rate lowest complexity system employs an inner orthogonal space-time block code with embedded OFDM-type transmission, while the highest data-rate highest complexity scheme does not employ an inner code. The latter group of schemes can also conveniently provide high data rates at the cost of reduced space diversity. All schemes can be readily extended to provide flexible unequal error protection for media transport. |
| Author | Papadopoulos, H. Sundberg, C.-E.W. |
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| CitedBy_id | crossref_primary_10_1007_s11277_011_0394_4 crossref_primary_10_1186_s13638_016_0697_y crossref_primary_10_1109_TWC_2015_2421898 crossref_primary_10_3724_SP_J_1146_2009_01609 |
| Cites_doi | 10.1002/ett.4460040311 10.1002/ett.4460100604 10.1109/ICASSP.2002.1005702 10.1109/49.730453 10.1109/ICC.2004.1312601 10.1109/MILCOM.2003.1290096 10.1109/JPROC.2002.800718 10.1109/MWC.2006.1700075 10.1109/SARNOF.2007.4567357 10.1109/TBC.2007.891696 10.1109/18.669123 10.1109/26.141453 10.1109/VETECF.2000.886696 10.1109/49.761047 10.1109/26.2763 10.1017/CBO9780511536779 10.1109/ICC.2000.853154 10.1109/TCOMM.2006.887491 10.1109/18.817517 10.1109/18.661517 10.1023/A:1008889222784 10.1109/26.57495 10.1109/VETECS.2007.440 |
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| Copyright | Copyright The Institute of Electrical and Electronics Engineers, Inc. (IEEE) 2008 |
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| Snippet | We consider space-time coding methods for cooperative narrowband and wideband downlink transmission from multiple base stations. The communication channels in... Subject to a maximum allowable relative delay between signals from distinct transmit antennas, the resulting received signal can be equivalently modeled as... |
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| SubjectTerms | Base stations Block codes Communication channels Downlink Iterative decoding MIMO Narrowband Space time codes Transmitting antennas Wideband Wireless communications |
| Title | Space-Time Codes for MIMO Systems with Non-Collocated Transmit Antennas |
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