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Blind Joint Maximum Likelihood Channel Estimation and Data Detection for SIMO Systems

Blind Joint Maximum Likelihood Channel Estimation and Data Detection for SIMO Systems
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摘要 A blind adaptive scheme is proposed for joint maximum likelihood (ML) channel estimation and data detection of singleinput multiple-output (SIMO) systems. The joint ML optimisation over channel and data is decomposed into an iterative optimisation loop. An efficient global optimisation algorithm called the repeated weighted boosting search is employed at the upper level to optimally identify the unknown SIMO channel model, and the Viterbi algorithm is used at the lower level to produce the maximum likelihood sequence estimation of the unknown data sequence. A simulation example is used to demonstrate the effectiveness of this joint ML optimisation scheme for blind adaptive SIMO systems. A blind adaptive scheme is proposed for joint maximum likelihood (ML) channel estimation and data detection of singleinput multiple-output (SIMO) systems. The joint ML optimisation over channel and data is decomposed into an iterative optimisation loop. An efficient global optimisation algorithm called the repeated weighted boosting search is employed at the upper level to optimally identify the unknown SIMO channel model, and the Viterbi algorithm is used at the lower level to produce the maximum likelihood sequence estimation of the unknown data sequence. A simulation example is used to demonstrate the effectiveness of this joint ML optimisation scheme for blind adaptive SIMO systems.
作者 Lajos Hanzo
出处 《International Journal of Automation and computing》 EI 2007年第1期47-51,共5页 国际自动化与计算杂志(英文版)
关键词 Blind space-time equalisation single-input multiple-output (SIMO) systems maximum likelihood (ML) estimation. Blind space-time equalisation, single-input multiple-output (SIMO) systems, maximum likelihood (ML) estimation.
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参考文献15

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