TY - JOUR
T1 - Spatial Permutation Modulation for Multiple-Input Multiple-Output (MIMO) Systems
AU - Lai, I. Wei
AU - Shih, Jhih Wei
AU - Lee, Che Wei
AU - Tu, Hsu Hsuan
AU - Chi, Jung Chun
AU - Wu, Jyun Sian
AU - Huang, Yuan Hao
N1 - Funding Information:
This work was supported by the Ministry of Science and Technology, Taiwan, under Grant MOST 107-2221-E-003-002.
Publisher Copyright:
© 2013 IEEE.
PY - 2019
Y1 - 2019
N2 - Spatial modulation (SM) for the multiple-input-multiple-output (MIMO) system has attracted research interests due to its high energy and spectral efficiency. SM creates a new modulation dimension by activating a single transmit antenna according to the data bits. In this paper, we propose spatial permutation modulation (SPM) that modulates data bits to a permutation vector and activates the transmit antenna at successive time instants accordingly. The SPM achieves higher diversity and thus lower error rate since the permutation vector disperses data along the time coordinate. The theoretical model of diversity and error rate are derived in both the slow-fading channel and fast-fading channel, leading to systematic and the fast SPM design exploration. Additionally, to show that the SPM can be easily combined with other SM-based techniques, space-time block coded spatial permutation modulation (STBC-SPM) and quadrature spatial permutation modulation (QSPM) is exemplarily designed based on space-time block coded spatial modulation (STBC-SM) and quadrature spatial modulation (QSM), respectively. The numerical results demonstrate the accuracy of our theoretical analyses and the superior SPM/STBC-SPM/QSPM performances to SM/STBC-SM/QSM, respectively, especially under the severe environments like low receive diversity or spatially-correlated channel, where SM fails to provide satisfactory performance. Under the environments where systems are allowed to operate with high throughputs, SPM also achieves lower error rate performance than SM. Last but not least, inspired by SM, numerous index modulation (IM) have been invented by activating various transmission entities, e.g., subcarrier in the orthogonal frequency division multiplexing (OFDM) system. The generalization from the SM to SPM can be easily applied to another IM system for the design of index permutation modulation (IPM).
AB - Spatial modulation (SM) for the multiple-input-multiple-output (MIMO) system has attracted research interests due to its high energy and spectral efficiency. SM creates a new modulation dimension by activating a single transmit antenna according to the data bits. In this paper, we propose spatial permutation modulation (SPM) that modulates data bits to a permutation vector and activates the transmit antenna at successive time instants accordingly. The SPM achieves higher diversity and thus lower error rate since the permutation vector disperses data along the time coordinate. The theoretical model of diversity and error rate are derived in both the slow-fading channel and fast-fading channel, leading to systematic and the fast SPM design exploration. Additionally, to show that the SPM can be easily combined with other SM-based techniques, space-time block coded spatial permutation modulation (STBC-SPM) and quadrature spatial permutation modulation (QSPM) is exemplarily designed based on space-time block coded spatial modulation (STBC-SM) and quadrature spatial modulation (QSM), respectively. The numerical results demonstrate the accuracy of our theoretical analyses and the superior SPM/STBC-SPM/QSPM performances to SM/STBC-SM/QSM, respectively, especially under the severe environments like low receive diversity or spatially-correlated channel, where SM fails to provide satisfactory performance. Under the environments where systems are allowed to operate with high throughputs, SPM also achieves lower error rate performance than SM. Last but not least, inspired by SM, numerous index modulation (IM) have been invented by activating various transmission entities, e.g., subcarrier in the orthogonal frequency division multiplexing (OFDM) system. The generalization from the SM to SPM can be easily applied to another IM system for the design of index permutation modulation (IPM).
KW - Error rate analysis
KW - index modulation (IM)
KW - index permutation modulation (IPM)
KW - multiple-input-multiple-output (MIMO)
KW - permutation
KW - quadrature spatial modulation (QSM)
KW - quadrature spatial permutation modulation (QSPM)
KW - space-time block coded spatial modulation (STBC-SM)
KW - space-time block coded spatial permutation modulation (STBC-SPM)
KW - space-time code (STC)
KW - spatial modulation (SM)
KW - spatial permutation modulation (SPM)
KW - sphere decoder
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U2 - 10.1109/ACCESS.2019.2918710
DO - 10.1109/ACCESS.2019.2918710
M3 - Article
AN - SCOPUS:85067246018
SN - 2169-3536
VL - 7
SP - 68206
EP - 68218
JO - IEEE Access
JF - IEEE Access
M1 - 8721630
ER -