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Training-based channel estimation for multiple-antenna broadband transmissions

机译:基于训练的多天线宽带传输的信道估计

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This paper addresses the problem of training sequence design for multiple-antenna transmissions over quasi-static frequency-selective channels. To achieve the channel estimation minimum mean square error, the training sequences transmitted from the multiple antennas must have impulse-like auto correlation and zero cross correlation. We reduce the problem of designing multiple training sequences to the much easier and well-understood problem of designing a single training sequence with impulse-like auto correlation. To this end, we propose to encode the training symbols with a space-time code, that may be the same or different from the space-time code that encodes the information symbols. Optimal sequences do not exist for all training sequence lengths and constellation alphabets. We also propose a method to easily identify training sequences that belong to a standard 2/sup m/-PSK constellation for an arbitrary training sequence length and an arbitrary number of unknown channel taps. Performance bounds derived indicate that these sequences achieve near-optimum performance.
机译:本文解决了准静态频率选择信道上多天线传输的训练序列设计问题。为了实现信道估计的最小均方误差,从多个天线发射的训练序列必须具有类似脉冲的自相关和零交叉相关。我们将设计多个训练序列的问题简化为设计具有脉冲状自动相关性的单个训练序列的问题更加容易理解。为此,我们建议使用时空码对训练符号进行编码,该时空码可以与对信息符号进行编码的时空码相同或不同。并非所有训练序列长度和星座字母都存在最佳序列。我们还提出了一种方法,可以针对任意训练序列长度和任意数量的未知信道抽头轻松识别属于标准2 / sup m / -PSK星座的训练序列。得出的性能范围表明这些序列达到了近乎最佳的性能。

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