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Layered MAP algorithm for MIMO ISI channels

Layered MAP algorithm for MIMO ISI channels
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摘要 The layered maximum a posteriori (L-MAP) algorithm has been proposed to detect signals under frequency selective fading multiple input multiple output (MIMO) channels. Compared to the optimum MAP detector, the L-MAP algorithm can efficiently identify signal bits, and the complexity grows linearly with the number of input antennas. The basic idea of L-MAP is to operate on each input sub-stream with an optimum MAP sequential detector separately by assuming the other streams are Gaussian noise. The soft output can also be forwarded to outer channel decoder for iterative decoding. Simulation results show that the proposed method can converge with a small number of iterations under different channel conditions and outperforms other sub-optimum detectors for rank-deficient channels. The layered maximum a posteriori (L-MAP) algorithm has been proposed to detect signals under frequency selective fading multiple input multiple output (MIMO) channels. Compared to the optimum MAP detector, the L-MAP algorithm can efficiently identify signal bits, and the complexity grows linearly with the number of input antennas. The basic idea of L-MAP is to operate on each input sub-stream with an optimum MAP sequential detector separately by assuming the other streams are Gaussian noise. The soft output can also be forwarded to outer channel decoder for iterative decoding. Simulation results show that the proposed method can converge with a small number of iterations under different channel conditions and outperforms other sub-optimum detectors for rank-deficient channels.
出处 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2008年第4期19-23,共5页 中国邮电高校学报(英文版)
基金 the National Natural Science Foundation of China (90604035)
关键词 MIMO L-MAP Bahl-Cocke-Jelinek-Raviv (BCJR) algorithm soft-in soft-out MIMO, L-MAP, Bahl-Cocke-Jelinek-Raviv (BCJR) algorithm, soft-in soft-out
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