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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Compressed Channel Estimation With Position-Based ICI Elimination for High-Mobility SIMO-OFDM Systems
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Compressed Channel Estimation With Position-Based ICI Elimination for High-Mobility SIMO-OFDM Systems

机译:高位置SIMO-OFDM系统中基于位置的ICI消除的压缩信道估计

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摘要

Orthogonal frequency-division multiplexing (OFDM) is widely adopted for providing reliable and high-data-rate communication in high-speed train (HST) systems. However, with increasing train mobility, the resulting large Doppler shift introduces intercarrier interference (ICI) in OFDM systems and greatly degrades channel estimation accuracy. Therefore, it is necessary and important to investigate reliable channel estimation and ICI mitigation methods in high-mobility environments. In this paper, we consider a typical HST communication system and show that the ICI caused by large Doppler shifts can be mitigated by exploiting the train position information and the sparsity of the basis expansion model (BEM)-based channel model. Then, we show that for the complex-exponential BEM (CE-BEM)-based channel model, the ICI can be completely eliminated to get the ICI-free pilots at each receive antenna. After that, we propose a new pilot pattern design algorithm to reduce system coherence to improve the compressed-sensing-based channel estimation accuracy. The proposed optimal pilot pattern is independent of the number of receive antennas, the Doppler shifts, train position, or train speed. Simulation results confirm the effectiveness of the proposed scheme in high-mobility environments. The results also show that the proposed scheme is robust to the speed of the moving train.
机译:正交频分复用(OFDM)被广泛用于在高速列车(HST)系统中提供可靠的高数据速率通信。但是,随着列车移动性的提高,所产生的大多普勒频移会在OFDM系统中引入载波间干扰(ICI),并大大降低信道估计的准确性。因此,研究在高​​移动性环境中可靠的信道估计和ICI缓解方法是必要且重要的。在本文中,我们考虑了一个典型的HST通信系统,并表明通过利用列车位置信息和基于基本扩展模型(BEM)的信道模型的稀疏性,可以减轻由大的多普勒频移引起的ICI。然后,我们表明对于基于复指数BEM(CE-BEM)的信道模型,可以完全消除ICI,以在每个接收天线上获得无ICI的导频。之后,我们提出了一种新的导频模式设计算法,以降低系统相干性,从而提高基于压缩感知的信道估计精度。建议的最佳导频模式与接收天线的数量,多普勒频移,列车位置或列车速度无关。仿真结果证实了该方案在高机动性环境下的有效性。结果还表明,所提出的方案对行驶中的火车具有鲁棒性。

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