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Channel estimation and symbol detection for block transmission using data-dependent superimposed training

机译:使用数据相关的叠加训练进行块传输的信道估计和符号检测

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摘要

We address the problem of frequency-selective channel estimation and symbol detection using superimposed training. The superimposed training consists of the sum of a known sequence and a data-dependent sequence that is unknown to the receiver. The data-dependent sequence cancels the effects of the unknown data on channel estimation. The performance of the proposed approach is shown to significantly outperform existing methods based on superimposed training (ST).
机译:我们解决了使用叠加训练进行频率选择信道估计和符号检测的问题。叠加训练由已知序列和接收器未知的数据相关序列之和组成。依赖于数据的序列消除了未知数据对信道估计的影响。结果表明,所提出的方法的性能明显优于基于叠加训练(ST)的现有方法。

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