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Subspace-Based Estimation of Rapidly Varying Mobile Channels for OFDM Systems

机译:基于子空间的OFDM系统快速变化移动通道的估计

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摘要

It is well-known that time-varying channels can provide time diversity and improve error rate performance compared to time-invariant fading channels. However, exploiting time diversity requires very accurate channel estimates at the receiver. In order to reduce the number of unknown channel coefficients while estimating the time-varying channel, basis expansion models can be used along with long transmission frames that contain multiple orthogonal frequency division multiplexing (OFDM) symbols that experience the channel variation. The design of these OFDM frames need to judiciously incorporate training and data insertions in the transmitted signal while maintaining orthogonality. In this work, we propose an inter channel interference (ICI)-free training model depending on pilot symbols only and provide a corresponding time-varying channel estimation method. This scheme relies on an algorithm to determine the number of OFDM symbols per frame and the number of basis functions per path with minimal information about the Doppler bandwidth. As a performance benchmark, Bayesian Cramér Rao lower bound (CRLB) and the corresponding MSE bound are derived analytically for the proposed training model. Theoretical MSE expressions of the proposed estimation scheme are also derived as well as the MSE expressions in the presence of Doppler frequency mismatch. Simulations exhibit substantial MSE improvement and the corresponding Symbol Error Rate (SER) performances of the low complexity estimation scheme. They also corroborate that, unlike the common results in the literature, an OFDM system can perform better as the Doppler frequency increases with judicious design of training and channel estimation schemes.
机译:众所周知,与时间不变的衰落通道相比,时变通道可以提供时间分集并提高错误率性能。然而,利用时间分集需要在接收器处非常准确的信道估计。为了在估计时变信道的同时减少未知信道系数的数量,可以使用基础扩展模型以及包含体验信道变化的多个正交频分复用(OFDM)符号的长传输帧。这些OFDM帧的设计需要明智地将训练和数据插入培训和数据插入在传输信号中,同时保持正交性。在这项工作中,我们提出了一种频道间干扰(ICI) - 免费训练模型,取决于导频符号并提供相应的时变信道估计方法。该方案依赖于算法确定每帧的OFDM符号的数量和每个路径的基函数数量,具有关于多普勒带宽的最小信息。作为绩效基准,贝叶斯CramérRAO下限(CRLB)和相应的MSE约为所提出的培训模型。在存在多普勒频率不匹配的情况下也是衍生出所提出的估计方案的理论MSE表达式。仿真表现出实质的MSE改进和低复杂度估计方案的相应符号误差率(SER)性能。它们还证实了,与文献中的共同结果不同,OFDM系统可以随着多普勒频率随着训练和信道估计方案的明智设计而增大而更好。

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